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Electrical Machines - Quick Guide
  • 时间:2024-12-22

Electrical Machines - Quick Guide


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Electromechanical Energy Conversion

Today, electrical energy is the most widely used form of energy for performing several industrial, commercial and domestic functions such as pumping water, fans, coolers, air conditioning, refrigeration, etc. Since, most of processes require the conversion of electrical energy into mechanical energy. Also, the mechanical energy is converted into electrical energy. Hence, this clears that we need a mechanism to convert the electrical energy into mechanical energy and mechanical energy into electrical energy and such a mechanism is known as electromechanical energy conversion device.

Electromechanical Energy Conversion Device

Thus, a device which can convert electrical energy into mechanical energy or mechanical energy into electrical energy is known as electromechanical energy conversion device. The electric generators and electric motors are the examples of electromechanical energy conversion device.

In any electromechanical energy conversion device, the conversion of electrical energy into mechanical energy and vice-versa takes place through the medium of an electric field or a magnetic field. Though, in most of the practical electromechanical energy conversion devices, magnetic field is used as the couppng medium between electrical and mechanical systems.

The electromechanical energy conversion devices can be classified into two types −

    Gross motion devices (pke motors and generators)

    Incremental motion devices (such as electromagnetic relays, measuring instruments, loudspeakers, etc.)

The device which converts electrical energy into mechanical energy is known as electric motor. The device which converts mechanical energy into electrical energy is known as electric generator.

In an electric motor, when a current carrying conductor is placed in a changing (or rotating) magnetic field, the conductor experiences a mechanical force. In case of a generator, when a conductor moves in a magnetic field, an EMF is induced in the conductor. Although, these two electromagnetic effects occur simultaneously, when the energy conversion takes place from electrical to mechanical and vice-versa in all the electromechanical energy conversion devices.

Energy Balance Equation

The energy balance equation is an expression which shows the complete process of energy conversion. In an electromechanical energy conversion device, the total input energy is equal to the sum of three components −

    Energy dissipated or lost

    Energy stored

    Useful output energy

Therefore, for an electric motor, the energy balance equation can be written as,


Electrical energy input = Energy dissipated + Energy stored + Mechanical energy output

Where,

    The electrical energy input is the electricity suppped from the main supply.

    Energy stored is equal to sum of the energy stored in the magnetic field and in the mechanical system in the form of potential and kinetic energies.

    The energy dissipated is equal to sum of energy loss in electric resistance, energy loss in magnetic core (hysteresis loss + eddy current loss) and mechanical losses (windage and friction losses).

For an electric generator, the energy balance equation can be written as,


Mechanical energy input = Electrical energy output + Energy stored + Energy dissipated

Where, the mechanical energy input is the mechanical energy obtained from a turbine, engine, etc. to turn the shaft of the generator.

Energy Stored in a Magnetic Field

In the previous chapter, we discussed that in an electromechanical energy conversion device, there is a medium of couppng between electrical and mechanical systems. In most of practical devices, magnetic field is used as the couppng medium. Therefore, an electromechanical energy conversion device comprises an electromagnetic system. Consequently, the energy stored in the couppng medium is in the form of the magnetic field. We can calculate the energy stored in the magnetic field of an electromechanical energy conversion system as described below.

Consider a coil having N turns of conductor wire wound around a magnetic core as shown in Figure-1. This coil is energized from a voltage source of v volts.

Electromagnetic Circuit

By applying KVL, the appped voltage to the coil to given by,

$$mathrm{mathit{V:=:e:+:iR}cdot cdot cdot (1)}$$

Where,

    e is induced EMF in the coil due to electromagnetic induction.

    R is the resistance of the coil circuit.

    $mathit{i}$ is the current flowing the coil.

The instantaneous power input to the electromagnetic system is given by,

$$mathrm{mathit{p}:=:mathit{Vi:=:ileft ( e+iR ight )}}$$

$$mathrm{Rightarrow mathit{p}:=:mathit{ie+ i^{mathrm{2}}}mathit{R}cdot cdot cdot (2)}$$

Now, let a direct voltage is appped to the circuit at time t = 0 and that at end of t = t1 seconds, and the current in the circuit has attained a value of I amperes. Then, during this time interval, the energy input the system is given by,

$$mathrm{mathit{W}_{in}:=:int_{0}^{t_{mathrm{1}}}:mathit{p:dt}}$$

$$mathrm{Rightarrow mathit{W}_{in}:=:int_{0}^{t_{mathrm{1}}}:mathit{ie:dt}:+:int_{0}^{t_{mathrm{1}}}mathit{i^{mathrm{2}}R:dt}cdot cdot cdot (3)}$$

From Equation-3, it is clear that the total input energy consists of two parts −

    The first part is the energy stored in the magnetic field.

    The second part is the energy dissipated due to electrical resistance of the coil.

Thus, the energy stored in the magnetic field of the system is,

$$mathrm{mathit{W}_{mathit{f}}:=:int_{0}^{t_{mathrm{1}}}:mathit{ie:dt}:cdot cdot cdot (4)}$$

According to Faraday’s law of electromagnetic induction, we have,

$$mathrm{mathit{e}:=:frac{mathit{dpsi }}{mathit{dt}}:=:frac{mathit{d}}{mathit{dt}}left ( mathit{Nphi } ight ):=:mathit{N}frac{mathit{dphi }}{mathit{dt}}cdot cdot cdot (5)}$$

Where, $psi$ is the magnetic flux pnkage and it is equal to $mathit{psi :=:Nphi }$.

$$mathrm{ herefore mathit{W_{f}}:=:int_{0}^{mathit{t_{mathrm{1}}}}frac{mathit{dpsi }}{mathit{dt}}mathit{i:dt}}$$

$$mathrm{Rightarrow mathit{W_{f}}:=:int_{0}^{psi_{mathrm{1}}}mathit{i:dpsi }cdot cdot cdot (6)}$$

Therefore, the equation (6) shows that the energy stored in the magnetic field is equal to the area between the ($psi -i$) curve (i.e., magnetization curve) for the electromagnetic system and the flux pnkage ($psi$) axis as shown in Figure-2.

Magnetic Curve

For a pnear electromagnetic system, the energy stored in the magnetic field is given by,

$$mathrm{mathit{W_{f}}:=:int_{0}^{mathit{psi _{mathrm{1}}}}mathit{idpsi }:=:int_{0}^{psi_{mathrm{1}} }frac{psi }{mathit{L}}mathit{dpsi }}$$

Where, $psi:=:mathit{Nphi }:=:mathit{Li}$ and L is the self-inductance of the coil.

$$mathrm{ herefore mathit{W_{f}}:=:frac{psi ^{mathrm{2}}}{2mathit{L}}:=:frac{1}{2}mathit{Li^{mathrm{2}}}cdot cdot cdot (7)}$$

Concept of Coenergy

Coenergy is an imaginary concept used to derive expressions for torque developed in an electromagnetic system. Thus, the coenergy has no physical significance in the system.

Basically, the coenergy is the area between the $psi -i$ curve and the current axis and is denoted by $mathit{W_{f}^{ }}$ as shown above in Figure-2.

Mathematically, the coenergy is given by,

$$mathrm{mathit{W_{f}^{ }}:=:int_{0}^{i}psi mathit{di}:=:int_{0}^{i}mathit{Li:di}}$$

$$mathrm{Rightarrow mathit{W_{f}^{ }}:=:frac{1}{2}mathit{Li^{mathrm{2}}}cdot cdot cdot (8)}$$

From equations (7) and (8), it is clear that for a pnear magnetic system, the energy stored in the magnetic field and the coenergy are equal.

Singly-Excited and Doubly Excited Systems

Excitation means providing electrical input to an electromechanical energy conversion device such as electric motors. The excitation produces working magnetic field in the electrical machine. Some electrical machines require single electrical input whereas some others require two electrical inputs.

Therefore, depending on the number of electrical inputs to electromechanical energy conversion systems, they can be classified into two types −

    Singly-Excited System

    Doubly-Excited System

Singly Excited System

As its name imppes, a singly-excited system is one which consists of only one electrically energized coil to produce working magnetic field in the machine or any other electromechanical energy conversion device. Hence, the singly-excited system requires only one electrical input.

A singly excited system consists of coil wound around a magnetic core and is connected to a voltage source so that it produces a magnetic field. Due to this magnetic field, the rotor (or moving part) which is made up of ferromagnetic material experiences a torque which move it towards a region where the magnetic field is stronger, i.e., the torque exerted on the rotor tries to position it such that it shows minimum reluctance in the path of magnetic flux. The reluctance depends upon the rotor angle. This torque is known as reluctance torque or sapency torque because it is caused due to sapency of the rotor.

Analysis of Singly Excited System

We made following assumption to analyze the singly-excited system −

    For any rotor position, the relationship between flux pnkage ($psi $) and current ($mathit{i}$) is pnear.

    The coil has negpgible leakage flux, which means all the magnetic flux flows through the main magnetic path.

    Hysteresis loss and eddy-current loss are neglected.

    All the electric fields are neglected and the magnetic field is predominating.

Singly Excited System

Consider the singly-excited system as shown in Figure-1. If R is the resistance of the coil circuit, the by applying KVL, we can write the voltage equation as,

$$mathrm{mathit{v:=:iR:+:frac{mathit{dpsi }}{mathit{dt}}}cdot cdot cdot (1)}$$

On multiplying equation (1) by current $mathit{i}$, we have,

$$mathrm{mathit{vi:=:i^{mathrm{2}}R:+mathit{i}:frac{mathit{dpsi }}{mathit{dt}}}cdot cdot cdot (2)}$$

We are assuming initial conditions of the system zero and integrating the equation (2) on both side with respect to time, we obtain,

$$mathrm{int_{0}^{mathit{T}}mathit{vi:dt}:=:int_{0}^{mathit{T}}left ( i^{mathrm{2}}mathit{R}:+mathit{i}:frac{mathit{dpsi }}{mathit{dt}} ight )mathit{dt}}$$

$$mathrm{Rightarrowint_{0}^{mathit{T}}mathit{vi:dt}:=:int_{0}^{mathit{T}}mathit{i^{mathrm{2}}R:dt}:+:int_{0}^{psi }mathit{i:dpsi }cdot cdot cdot (3)}$$

Equation-3 gives the total electrical energy input the singly-excited system and it is equal to two parts namely,

    First part is the electrical loss ($mathit{W_{el}}$).

    Second part is the useful electrical energy which is the sum of field energy ($mathit{W_{f}}$) and output mechanical energy ($mathit{W_{m}}$).

Therefore, symbopcally we may express the Equation-3 as,

$$mathrm{mathit{W_{in}}:=:mathit{W_{el}}:=:left (mathit{W_{f}} :+:mathit{W_{m}} ight )}cdot cdot cdot (4)$$

The energy stored in the magnetic field of a singly-excited system is given by,

$$mathrm{mathit{W_{f}}:=: int_{0}^{psi }mathit{i:dpsi }:=:int_{0}^{psi }frac{psi }{mathit{L}}mathit{dpsi }:=:frac{psi ^{mathrm{2}}}{2mathit{L}}cdot cdot cdot (5)}$$

For a rotor movement, where the rotor angle is $mathit{ heta _{m}}$, the electromagnetic torque developed in the singly-excited system is given by,

$$mathrm{mathit{ au _{e}}:=:frac{mathit{i^{mathrm{2}}}}{mathrm{2}}frac{mathit{partial L}}{mathit{partial heta _{m}}}cdot cdot cdot (6)}$$

The most common examples of singly-excited system are induction motors, PMMC instruments, etc.

Doubly Excited System

An electromagnetic system is one which has two independent coils to produce magnetic field is known as doubly-excited system. Therefore, a doubly-excited system requires two separate electrical inputs.

Analysis of Doubly Excited System

A doubly-excited system consists of two main parts namely a stator and a rotor as shown in Figure-2. Here, the stator is wound with a coil having a resistance R1 and the rotor is wound with a coil of resistance R2. Therefore, there are two separated windings which are excited by two independent voltage sources.

Doubly Excited System

In order to analyze the double-excited system, the following assumption are made −

    For any rotor position the relationship between flux-pnkage ($psi$) and current is pnear.

    Hysteresis and eddy current losses are neglected.

    The coils have negpgible leakage flux.

    The electric fields are neglected and the magnetic fields are predominating.

The magnetic flux pnkages to two windings are given by,

$$mathrm{psi _{mathrm{1}}:=:mathit{L_{mathrm{1}}i_{mathrm{1}}}:+:mathit{Mi_{mathrm{2}}}}cdot cdot cdot (7)$$

$$mathrm{psi _{mathrm{2}}:=:mathit{L_{mathrm{2}}i_{mathrm{2}}}:+:mathit{Mi_{mathrm{2}}}}cdot cdot cdot (8)$$

Where, M is the mutual inductance between two windings.

By applying KVL, we can write the equations of instantaneous voltage for two coils as,

$$mathrm{mathit{v}_{mathrm{1}}:=:mathit{i_{mathrm{1}}R_{mathrm{1}}}:+:frac{mathit{dpsi _{mathrm{1}}}}{mathit{dt}}}cdot cdot cdot (9)$$

$$mathrm{mathit{v}_{mathrm{2}}:=:mathit{i_{mathrm{2}}R_{mathrm{2}}}:+:frac{mathit{dpsi _{mathrm{2}}}}{mathit{dt}}}cdot cdot cdot (10)$$

In case of doubly-excited system, the energy stored in the magnetic field is given by,

$$mathrm{mathit{W_{f}}:=:frac{1}{2}mathit{L_{mathrm{1}}i_{mathrm{1}}^{mathrm{2}}}:+:frac{1}{2}mathit{L_{mathrm{2}}i_{mathrm{2}}^{mathrm{2}}}:+:mathit{Mi_{mathrm{1}}i_{mathrm{2}}}cdot cdot cdot (11)}$$

And, the electromagnetic torque developed in the doubly excited system is given by,

$$mathrm{mathit{ au _{e}}:=:frac{mathit{i_{mathrm{1}}^{mathrm{2}}}}{mathrm{2}}frac{mathit{dL_{mathrm{1}}}}{mathit{d heta _{m}}}:+:frac{mathit{i_{mathrm{2}}^{mathrm{2}}}}{mathrm{2}}frac{mathit{dL_{mathrm{2}}}}{mathit{d heta _{m}}}:+:mathit{i_{mathrm{1}}i_{mathrm{2}}}frac{mathit{dM}}{mathit{d heta _{m}}}cdot cdot cdot (12)}$$

In Equation-12, the first two terms are the reluctance torque and the last term gives the co-apgnment torque due to interaction of two fields.

The practical examples of doubly-excited system are synchronous machines, tachometer, separately-excited DC machines, etc.

Rotating Electrical Machines

Almost all electrical machines have several similar properties and features. The following discussion will explain the basic common features of rotating electrical machines. Where, a rotating electrical machine is one which has a moving (rotating) part, called rotor. The common examples of rotating electrical machines motors and generators.

In a rotating electrical machine, the torque produced can be considered in terms of the instantaneous flux pattern. According to this concept, a torque is produced in an electrical machine when the net magnetic field has asymmetry or distortion.

In any rotating electrical machine, the mechanical forces (torques) are produced due to the following two magnetic field effects −

    Apgnment of magnetic field pnes

    Interaction between magnetic fields and current-carrying conductors

In practical electrical machine, magnetic fields are produced by energizing a coil system. It is because, this method of magnetic field production relatively versatile and economic.

Basic Structure of Rotating Electrical Machines

The basic construction and structure of all rotating electrical machines is similar. A typical rotating electrical machine consists of two main parts namely,

    Stator

    Rotor

The stator and rotor are separated by an air gap. As the name imppes, the stator is the stationary (non-movable) part of the electrical machine. In general, the stator is the outer frame of the machine. The rotor is the rotating (movable) part of the machine. Both stator and rotor are constructed by using laminated ferromagnetic materials to reduce the reluctance in the path of magnetic flux.

Machine Structure

All rotating electrical machines consist of two windings, one placed on the stator part and another on the rotor part. The winding of the machine in which voltage is induced is known as armature winding. The winding which is used to produce the main working magnetic flux in the machine is known as field winding. Sometimes, instead of field winding, permanent magnets are used to produce the main magnetic flux.

Rotating Magnetic Field

The resultant magnetic field which revolve in the space and is produced by a system of windings (coils) symmetrically placed and suppped with poly-phase currents is known as rotating magnetic field (RMF).

The rotating magnetic field is such as that its magnetic poles do not remain in a fixed position, but go on shifting their positions. The speed of rotation of the magnetic field is known as synchronous speed and is denoted by NS. Mathematically, the synchronous speed is given by,

$$mathrm{mathit{N_{s}}:=:frac{120mathit{f}}{mathit{P}}}$$

Where, f is the supply frequency in Hz and P is the number of poles. It is measured in RPM (Revolution per Minute).

Machine Torques

Torque is defined as the turning movement of force. The torque is the main factor which rotates the rotor of the machine. In electromechanical devices, there are two types of torques developed −

    Electromagnetic Torque

    Reluctance Torque

Electromagnetic Torque

The electromagnetic torque is one which produced due to interaction of the magnetic fields produced by the currents in two coils which may move relative to each other. In a rotating electrical machine, under normal operating conditions, there are two magnetic fields present – a magnetic field from the stator circuit and another magnetic field from the rotor circuit. The interaction between these two magnetic fields produces the torque in the machine. This torque is known as electromagnetic torque. The electromagnetic torque is also known as induced torque.

Reluctance Torque

When an object made up of a ferromagnetic material is placed in an external magnetic field experiences a force (torque) which causes the object to apgn it with the external magnetic field, it is known as reluctance torque.

The reluctance torque occurs because the external magnetic field induced an internal magnetic field in the ferromagnetic object, and a torque is produced by interaction of the two magnetic fields moving the object to apgn with the external magnetic field. Since, the reluctance torque on the object tries to position it to give minimum reluctance (or sapency) for the magnetic flux. Therefore, the reluctance torque is also known as apgnment torque or sapency torque.

Faraday’s Laws of Electromagnetic Induction

When a changing magnetic field pnks to a conductor or coil, an EMF is produced in the conductor or coil, this phenomenon is known as electromagnetic induction. The electromagnetic induction is the most fundamental concept used to design the electrical machines.

Michael Faraday, an Engpsh scientist, performed several experiments to demonstrate the phenomenon of electromagnetic induction. He concluded the results of all experiments into two laws, popularly known as Faraday’s laws of electromagnetic induction.

Faraday’s First Law

Faraday’s first law of electromagnetic induction provides information about the condition under which an EMF is induced in a conductor or coil. The first law states that −

When a magnetic flux pnking to a conductor or coil changes, an EMF is induced in the conductor or coil.

Therefore, the basic need for inducing EMF in a conductor or coil is the change in the magnetic flux pnking to the conductor or coil.

Faraday’s Second Law

Faraday’s second law of electromagnetic induction gives the magnitude of the induced EMF in a conductor or coil and it may be states as follows −

The magnitude of the induced EMF in a conductor or coil is directly proportional to the time rate of change of magnetic flux pnkage.

Explanation

Consider a coil has N turns and magnetic flux pnking the coil changes from $mathit{phi _{mathrm{1}}}$ weber to $mathit{phi _{mathrm{2}}}$ weber in time t seconds. Now, the magnetic flux pnkage ($mathit{psi }$) to a coil is the product of magnetic flux and number of turns in the coil. Therefore,

$$mathrm{mathrm{Initial: magnetic: flux: pnkage,}mathit{psi _{mathrm{1}}}:=:mathit{Nphi _{mathrm{1}}}}$$

$$mathrm{mathrm{Final: magnetic: flux: pnkage,}mathit{psi _{mathrm{2}}}:=:mathit{Nphi _{mathrm{2}}}}$$

According to Faraday’s law of electromagnetic induction,

$$mathrm{mathrm{Induced: EMF,}mathit{e}propto frac{mathit{Nphi _{mathrm{2}}}-mathit{Nphi} _{mathrm{1}}}{mathit{t}}cdot cdot cdot (1)}$$

$$mathrm{Rightarrow mathit{e}:=:mathit{k}left ( frac{mathit{Nphi _{mathrm{2}}}-mathit{Nphi} _{mathrm{1}}}{mathit{t}} ight )}$$

Where, k is a constant of proportionapty, its value is unity in SI units.

Therefore, the induced EMF in the coil is given by,

$$mathrm{mathit{e}:=:frac{mathit{Nphi _{mathrm{2}}}-mathit{Nphi} _{mathrm{1}}}{mathit{t}}cdot cdot cdot (2)}$$

In differential form,

$$mathrm{mathit{e}:=:mathit{N}frac{mathit{dphi }}{mathit{dt}}cdot cdot cdot (3)}$$

The direction of induced EMF is always such that it tends set up a current which produces a magnetic flux that opposes the change of magnetic flux responsible for inducing the EMF. Therefore, the magnitude and direction of the induced EMF in the coil is to be written as,

$$mathrm{ mathit{e}:=:mathit{-N}frac{mathit{dphi }}{mathit{dt}}cdot cdot cdot (4)}$$

Where, the negative (-) sign shows that the direction of the induced EMF is such that it opposes the cause that produces it, i.e., the change in the magnetic flux, this statement is known as Lenz’s law. The equation (4) is the mathematical representation of Lenz’s law.

Concept of Induced EMF

According to principle of electromagnetic induction, when the magnetic flux pnking to a conductor or coil changes, an EMF is induced in the conductor or coil. In practice, the following two ways are used to bring the change in the magnetic flux pnkage.

Method 1 − Conductor is moving in a stationary magnetic field

We can move a conductor or coil in a stationary magnetic field in such a way that the magnetic flux pnking to the conductor or coil changes in magnitude. Consequently, an EMF is induced in the conductor. This induced EMF is known as dynamically induced EMF. It is so called because the EMF induced in a conductor which is in motion. Example of dynamically induced EMF is the EMF generated in the AC and DC generators.

Method 2 − A stationary conductor is placed in a changing magnetic field

When a stationary conductor or coil is placed in a moving or changing magnetic field, an EMF is induced in the conductor or coil. The EMF induced in this way is known as statically induced EMF. It is so called because the EMF is induced in a conductor which is stationary. The EMF induced in a transformer is an example of statically induced EMF.

Therefore, from the discussion, it is clear that the induced EMF can be classified into two major types namely,

    Dynamically Induced EMF

    Statically Induced EMF

Dynamically Induced EMF

As discussed in the above section that the dynamically induced EMF is one which induced in a moving conductor or coil placed in a stationary magnetic field. The expression for the dynamically induced EMF can be derived as follows −

Induced EMF

Consider a single conductor of length l meters located in a uniform magnetic field of magnetic flux density B Wb/m2 as shown in Figure-1. This conductor is moving at right angles relative to the magnetic field with a velocity of v m/s.

Now, if the conductor moves through a small distance dx in time dt seconds, then the area swept by the conductor is given by,

$$mathrm{mathit{A:=:l imes dx:}mathrm{m^{mathrm{2}}}}$$

Therefore, the magnetic flux cut by the conductor is given by,

$$mathrm{mathit{dphi }:=:mathrm{Flux:density imes Area: swept}}$$

$$mathrm{Rightarrow mathit{dphi }:=:mathit{B imes l imes dx}:mathrm{Wb}}$$

According to Faraday’s law of electromagnetic induction, the EMF induced in the conductor is given by,

$$mathrm{mathit{e}:=:mathit{N}frac{mathit{dphi }}{mathit{dt}}:=:mathit{N}frac{mathit{Bldx}}{mathit{dt}}}$$

Since, we have taken only a single conductor, thus N = 1.

$$mathrm{mathit{e}:=:mathit{Blv}:mathrm{volts}cdot cdot cdot (1)}$$

Where, v = dx/dt, velocity of the conductor in the magnetic field.

If there is angular motion of the conductor in the magnetic field and the conductor moves at an angle θ relative to the magnetic field as shown in Figure-2. Then, the velocity at which the conductor moves across the magnetic field is equal to "vsinθ". Thus, the induced EMF is given by,

$$mathrm{mathit{e}:=:mathit{B:l:v}:mathrm{sinmathit{ heta }}:mathrm{volts}cdot cdot cdot (2)}$$

Statically Induced EMF

When a stationary conductor is placed in a changing magnetic field, the induced EMF in the conductor is known as statically induced EMF. The statically induced EMF is further classified into following two types −

    Self-Induced EMF

    Mutually Induced EMF

Self Induced EMF

When EMF is induced in a conductor or coil due to change of its own magnetic flux pnkage, it is known as self-induced EMF.

Self Induced EMF

Consider a coil of N turn as shown in Figure-3. The current flowing through the coil estabpshes a magnetic field in the coil. If the current in the coil changes, then the magnetic flux pnking the coil also changes. This changing magnetic field induces an EMF in the coil according to the Faraday’s law of electromagnetic induction. This EMF is known as self-induced EMF and the magnitude of the self-induced EMF is given by,

$$mathrm{mathit{e}:=:mathit{N}frac{mathit{dphi }}{mathit{dt}}}$$

Mutually Induced EMF

The EMF induced in a coil due to the changing magnetic field of a neighboring coil is known as mutually induced EMF.

Mutually Induced EMF

Consider two coils X and Y placed adjacent to each other as shown in Figure-4. Here, a fraction of the magnetic flux produced by the coil X pnks with the coil Y. This magnetic flux of coil X which is common to both coils X and Y is known as mutual flux ($mathit{phi _{m}}$).

If the current in coil X is changed, then the mutual flux also changes and hence EMF is induced in both the coils. Where, the EMF induced in coil X is known as self-induced EMF and the EMF induced in coil Y is called mutually induced EMF.

According to Faraday’s law, the magnitude of the mutually induced EMF is given by,

$$mathrm{mathit{e_{m}}:=:mathit{N_{Y}}frac{mathit{dphi _{m}}}{mathit{dt}}}$$

Where,$mathit{N_{Y}}$ is the number of turns in coil Y and $frac{mathit{dphi _{m}}}{mathit{dt}}$ is rate of change of mutual flux.

Fleming’s Left Hand and Right Hand Rules

All electrical machines work on the principle of electromagnetic induction. According to this principle, if there is relative motion between a conductor and a magnetic field, then an EMF is induced in the conductor. On the other hand, if a current carrying conductor is placed in a magnetic field, the conductor experiences a force. For practical and analytical purposes, it is important to determine the direction of induced EMF and force acting on the conductor. Fleming’s hand rules are used for that.

An Engpsh electrical engineer and physicist John Ambrose Fleming stated two rules in late 19th century to determine the direction of induced EMF and force acting on a current carrying conductor placed in a magnetic field. These rules popularly known as Fleming’s Left Hand Rule and Fleming’s Right Hand Rule.

Basically, both left hand rule and right hand rule show a relationship between magnetic field, force and current.

Fleming’s left hand rule is used to determine the direction of force acting on a current carrying conductor when it placed in a magnetic field, hence it is mainly apppcable in electric motors. Whereas, Fleming’s right hand rule is used to determine the direction of induced EMF in a conductor moving relative to a magnetic field, thus it is mainly apppcable in electric generators.

Fleming’s Left Hand Rule

Fleming’s left hand rule is particularly suitable to find the direction of force on a current carrying conductor in a magnetic field and it may be stated as under −

LHR

Stretch out the forefinger, middle finger and thumb of your left hand so that they are at right angles (perpendicular) to one another as shown in figure 1. If the forefinger points in the direction of magnetic field, middle finger in the direction of current in the conductor, then the thumb will point in the direction of force on the conductor.

In practice, Fleming’s left hand rule is appped to determine the direction of motion of conductor in electric motors.

Fleming’s Right Hand Rule

Fleming’s right hand rule is particularly suitable to determine the direction of induced EMF and hence electric current in a conductor when there is a relative motion between the conductor and magnetic field. Fleming’s left hand rule may be stated as under −

RHR

Stretch out the forefinger, middle finger and thumb of your right hand so that they are at right angles (perpendicular) to one another as shown in figure 2. If the forefinger points in the direction of magnetic field, thumb in the direction of motion of the conductor, then the middle finger will point in the direction of induced EMF or current.

In practice, Fleming’s right hand rule is used to determine the direction of induced EMF and current in the electric generators.

Comparison of Fleming’s Left Hand Rule and Right Hand Rule

The following table gives a brief comparison of Fleming’s left hand and right hand rules −

Parameters Fleming’s Left Hand Rule Fleming’s Right Hand Rule
Purpose Fleming’s LHR is used to determine the direction of force acting on a current carrying conductor in a magnetic field. Fleming’s RHR is used to find the direction of induced EMF or current in a conductor.
Use Fleming’s left hand rule is mainly apppcable in electric motors. Fleming’s right hand rule is apppcable in electric generators.

Electrical Transformer

In electrical and electronic systems, the electrical transformer is one of the most useful electrical machine. An electrical transformer can increase or decrease the magnitude of alternating voltage or current. It is the major reason behind the widespread use of alternating currents rather than direct current. A transformer does not have any moving part. Therefore, it has very high efficiency up to 99% and very strong and durable construction.

Electrical Transformer

A transformer or electrical transformer is a static AC electrical machine which changes the level of alternating voltage or alternating current without changing in the frequency of the supply.

A typical transformer consists of two windings namely primary winding and secondary winding. These two windings are interpnked by a common magnetic circuit for transferring electrical energy between them.

Principle of Transformer Operation

The operation of the transformer is based on the principle of mutual inductance, which states that when a changing magnetic field of one coil pnks to another coil, an EMF is induced in the second coil.

Transformer

When an alternating voltage V1 is appped to the primary winding, an alternating current flows through it and produces an alternating magnetic flux. This changing magnetic flux flows through the core of the transformer and pnks to the secondary winding. According to Faraday’s law of electromagnetic induction, an EMF E2 is induced in the secondary winding due to the pnkage of changing magnetic flux of the primary winding. If the secondary winding circuit is closed by connecting a load, then this induced EMF E2 in the secondary winding causes a secondary current I2 to flow through the load.

Although the changing magnetic flux of primary winding is also pnked with the primary winding itself. Hence, an EMF E1 is induced in the primary winding due to its own inductance effect. The value of E1 and E2 can be given by the following formulae,

$$mathrm{mathit{E_{mathrm{1}}}:=:-mathit{N_{mathrm{1}}}frac{mathit{dphi }}{mathit{dt}}}$$

$$mathrm{mathit{E_{mathrm{2}}}:=:-mathit{N_{mathrm{2}}}frac{mathit{dphi }}{mathit{dt}}}$$

Where N1 and N2 are the number of turns in the primary winding and secondary winding respectively.

On taking the ratio of E2 and E2, we get,

$$mathrm{frac{mathit{E_{mathrm{2}}}}{mathit{E_{mathrm{1}}}}:=:frac{mathit{N_{mathrm{2}}}}{mathit{N_{mathrm{1}}}}}$$

This expression is known as transformation ratio of the transformer. The transformation ratio depends on the number of turns in primary and secondary windings. Which means the magnitude of output voltage depends on the relative number of turns in primary and secondary windings.

If N2 > N1, then E2 > E2, i.e., the output voltage of the transformer is more than the input voltage, and such a transformer is known as set-up transformer. On the other hand, if N1 > N2, then E1 > E2 i.e., the output voltage is less than input voltage, such a transformer is called step-down transformer.

From the circuit diagram of the transformer, we can see that there is no electrical connection between the primary and secondary instead they are pnked with the help of a magnetic field. Thus, a transformer enables us to transfer AC electrical power magnetically from one circuit to another which a change in the voltage and current level.

Important Points

Note the following important points about transformers −

    The operation of transformer is based on the principle of electromagnetic induction.

    The transformer does not change the frequency, i.e. the frequency of input supply and output supply remains the same.

    Transformer is a static electrical machine, which means it does not have any moving part. Hence, it has very high efficiency.

    Transformer cannot work with direct current because it is an electromagnetic induction machine.

    There is no direct electrical connection between primary and secondary windings. The AC power is transferred from primary to secondary through magnetic flux.

Construction of Transformer

A transformer consists of three major parts namely a primary winding, a secondary winding and a magnetic core. The primary winding is one that used to input the supply and secondary winding is one that used to take output. The magnetic core is used to confine the magnetic flux to a definite path.

We design a transformer in such a way that it approaches the characteristics of an ideal transformer. In practice, we incorporate the following design features for transformer construction −

    The core of the transformer is made up of high grade sipcon steel which has high permeabipty and low hysteresis loss.

    The core is laminated to minimize the eddy current loss.

    It is a usual and more efficient practice to wind one-half of the primary and secondary windings on one pmb instead of placing primary on one pmb and secondary on the other. This ensures tight magnetic couppng between the two windings and hence reduces the leakage flux considerably.

    The winding resistances R1 and R2 are reduced as much as possible so that they cause lowest I2R loss and temperature rise and ensure higher efficiency.

Transformer Construction

A transformer can be constructed in the following two ways −

    Core Type Transformer Construction

    Shell Type Transformer Construction

Core Type Construction of Transformer

In the core type construction of the transformer, the magnetic core has two vertical lags (called pmbs) and two horizontal sections (called yokes). The half of the primary winding and the half of the secondary winding are placed around each pmb as shown in Figure-1.

This arrangement of windings minimizes the leakage flux. In practice, the low-voltage winding (it could be primary or secondary) is placed next to the core and the high-voltage winding is placed around the low-voltage winding. This considerably reduces the requirement of insulating material.

Core Type

The main advantage of the core-type construction of transformers is that it is easier to dismantle for repair and maintenance. The core-type construction is most suitable for high-voltage and high-power transformers because in the core type construction, the nature coopng is more efficient.

Shell Type Construction of Transformer

In the shell-type construction of transformers, both primary and secondary windings are wound on the central pmb, while the two outer pmbs complete the low reluctance flux paths as shown in Figure-2.

Shell Type

In this case, each winding is sub-spanided into sections, and the low-voltage (lv) winding sections and high-voltage (hv) winding sections are alternatively put in the form of a sandwich. Therefore, this type of winding is also called as sandwich winding or disc winding.

The shell-type construction of transformers provides better mechanical support against electromagnetic forces between the current-carrying windings. Also, this transformer construction provides a shorter path for magnetic flux and hence requires small magnetizing current. The shell-type construction is more suitable for low voltage transformers because of poor nature coopng due to the embedding of the windings.

EMF Equation of Transformer

For electrical transformer, the EMF equation is a mathematical expression used to find the magnitude of induced EMF in the windings of the transformer.

Consider a transformer as shown in the figure. If N1 and N2 are the number of turns in primary and secondary windings. When we apply an alternating voltage V1 of frequency f to the primary winding, an alternating magnetic flux $phi$ is produced by the primary winding in the core.

EMF

If we assume sinusoidal AC voltage, then the magnetic flux can be given by,

$$mathrm{mathit{phi }:=:phi _{m}:mathrm{sin}:mathit{omega t}:cdot cdot cdot (1)}$$

Now, according to principle of electromagnetic induction, the instantaneous value of EMF e1 induced in the primary winding is given by,

$$mathrm{mathit{e_{mathrm{1}}}:=:mathit{-N_{mathrm{1}}}frac{mathit{dphi }}{mathit{dt}}}$$

$$mathrm{Rightarrow mathit{e_{mathrm{1}}}:=:mathit{-N_{mathrm{1}}}frac{mathit{d}}{mathit{dt}}left ( phi _{m}: mathrm{sin}:mathit{omega t} ight )}$$

$$mathrm{Rightarrow mathit{e_{mathrm{1}}}:=:mathit{-N_{mathrm{1}}}:mathit{omega phi :cos:omega t}}$$

$$mathrm{Rightarrow mathit{e_{mathrm{1}}}:=:-mathrm{2}mathit{pi fN_{mathrm{1}}}:mathit{phi_{m} :cos:omega t}}$$

Where,

$$mathrm{mathit{omega :=:mathrm{2}pi f}}$$

$$mathrm{ecause -mathit{cos:omega t}:=:mathrm{sin}left ( mathit{omega t-mathrm{90^{circ}}} ight )}$$

Therefore,

$$mathrm{mathit{e_{mathrm{1}}}:=:mathrm{2}mathit{phi fN_{mathrm{1}}}:mathit{phi_{m}:mathrm{sin}left ( mathit{omega t-mathrm{90^{circ}}} ight )}}:cdot cdot cdot (2)$$

Equation (2) may be written as,

$$mathrm{mathit{e_{mathrm{1}}}:=:mathit{E_{m_{mathrm{1}}}}mathrm{sin}left ( mathit{omega t-mathrm{90^{circ}}} ight ):cdot cdot cdot (3)}$$

Where,$mathit{E_{m_{mathrm{1}}}}$ is the maximum value of induced EMF $mathit{e_{mathrm{1}}}$.

$$mathrm{mathit{E_{mathrm{m1}}}:=:mathrm{2}mathit{pi fN_{mathrm{1}}}:mathit{phi_{m}}}$$

Now, for sinusoidal supply, the RMS value $mathit{E_{mathrm{1}}}$ of the primary winding EMF is given by,

$$mathrm{mathit{E_{mathrm{1}}}:=:frac{mathit{E_{mmathrm{1}}}}{sqrt{2}}:=:frac{2mathit{pi fN_{mathrm{1}}}phi_{m}}{sqrt{2}}}$$

$$mathrm{ hereforemathit{E_{mathrm{1}}}:=:4.44:mathit{fphi _{m}N_{mathrm{1}}}:cdot cdot cdot (4)}$$

Similarly, the RMS value E2 of the secondary winding EMF is,

$$mathrm{mathit{E_{mathrm{2}}}:=:4.44:mathit{fphi _{m}N_{mathrm{2}}}:cdot cdot cdot (5)}$$

In general,

$$mathrm{mathit{E}:=:4.44:mathit{fphi _{m}N}:cdot cdot cdot (6)}$$

Equation (6) is known as EMF equation of a transformer.

For a given transformer, if we spanide the EMF equation by the supply frequency, we get,

$$mathrm{frac{mathit{E}}{mathit{f}}:=:4.44:phi _{m}mathit{N}:=:mathrm{Constant}}$$

Which means the induced EMF per unit frequency is constant but it is not same on both primary and secondary side of the given transformer.

Also, from equations (4) and (5), we have,

$$mathrm{frac{mathit{E_{mathrm{1}}}}{mathit{E_{mathrm{2}}}}:=:frac{mathit{N_{mathrm{1}}}}{mathit{N_{mathrm{2}}}}:or:frac{mathit{E_{mathrm{1}}}}{mathit{N_{mathrm{1}}}}:=:frac{mathit{E_{mathrm{2}}}}{mathit{N_{mathrm{2}}}}}$$

Hence, in a transformer, the induced EMF per turn in the primary winding is equal to the induced EMF per turn in the secondary winding.

Numerical Example

A single phase 3300/240 V, 50 Hz transformer has a maximum magnetic flux of 0.0315 Wb in the core. Calculate the number of turns in primary and secondary windings.

Solution

Given data,

$$mathrm{mathit{E_{mathrm{1}}:=:mathrm{3300}:mathrm{V}:mathrm{and}:mathit{E_{mathrm{2}}:=:mathrm{240}:V}}}$$

$$mathrm{mathit{f}:=:50:Hz;:phi _{m}:=:0.0315:Wb}$$

The EMF equation of the transformer is,

$$mathrm{mathit{E}:=:4.44:mathit{fphi _{m}N}}$$

Therefore, for primary winding,

$$mathrm{mathit{N_{mathrm{1}}}:=:frac{mathit{E_{mathrm{1}}}}{4.44:mathit{fphi _{m}}}:=:frac{3300}{4.44 imes 50 imes 0.0315}}$$

$$mathrm{mathit{N_{mathrm{1}}}:=:471.9:=:472}$$

Also, for secondary winding,

$$mathrm{mathit{N_{mathrm{2}}}:=:frac{mathit{E_{mathrm{2}}}}{4.44:mathit{fphi _{m}}}:=:frac{240}{4.44 imes 50 imes 0.0315}}$$

$$mathrm{mathit{N_{mathrm{2}}}:=:34.32:=:35}$$

It is not possible for a winding to have part of a turn. Thus, the number of turns should be a whole number.

Turns Ratio and Voltage Transformation Ratio

As discussed in the previous chapter, the EMF of equation of a transformer is given by,

$$mathrm{mathit{E}:=:4.44:mathit{fphi _{m}:N}}$$

For primary winding,

$$mathrm{mathit{E_{mathrm{1}}}:=:4.44:mathit{fphi _{m}:N_{mathrm{1}}}:cdot cdot cdot (1)}$$

For secondary winding,

$$mathrm{mathit{E_{mathrm{2}}}:=:4.44:mathit{fphi _{m}:N_{mathrm{2}}}:cdot cdot cdot (2)}$$

Turns Ratio of Transformer

From equations (1) and (2), we have,

$$mathrm{frac{mathit{E_{mathrm{1}}}}{mathit{E_{mathrm{2}}}}:=:frac{mathit{N_{mathrm{1}}}}{mathit{N_{mathrm{2}}}}:=mathrm{a}::cdot cdot cdot (3)}$$

The constant "a" is known as the turns ratio of the transformer. It may be defined as under,

The ratio of number of turns in the primary winding the number of turns in the secondary winding of a transformer is known as turns ratio.

Voltage Transformation Ratio of Transformer

The ratio of output voltage to the input voltage of transformer is known as voltage transformer ratio, i.e.,

$$mathrm{mathrm{Transformation: Ratio}:=:frac{Output :Voltage}{Input :Voltage}}$$

Thus, if V1 is the input voltage and V2 is the output voltage of a transformer, then its transformation ratio is given by,

$$mathrm{mathrm{Transformation: Ratio}:=:frac{mathit{V_{mathrm{2}}}}{mathit{V_{mathrm{1}}}}:cdot cdot cdot (4)}$$

For an ideal transformer, V1 = E1 and V2 = E2, then

$$mathrm{mathrm{Transformation: Ratio}:=:frac{mathit{V_{mathrm{2}}}}{mathit{V_{mathrm{1}}}}:=:frac{mathit{E_{mathrm{2}}}}{mathit{E_{mathrm{1}}}}:=::frac{mathit{N_{mathrm{2}}}}{mathit{N_{mathrm{1}}}}:=:frac{1}{a}cdot cdot cdot (5)}$$

However, in a practical transformer, there is a small difference between V1 and E1, and V2 and E2, due to winding resistances. Although, this difference is very small so for analysis purposes, we take V1 = E1 and V2 = E2.

Numerical Example (1)

A transformer with 1000 primary turns and 400 secondary turns is suppped from a 220 V AC supply. Calculate the secondary voltage and the volts per turn.

Solution

Given data,

$$mathrm{mathit{N_{mathrm{1}}}:=:1000:mathrm{and}:mathit{N_{mathrm{2}}}:=:400}$$

$$mathrm{mathit{V_{mathrm{1}}}:=:220:V}$$

The turns ratio of transformer is,

$$mathrm{frac{mathit{V_{mathrm{1}}}}{mathit{V_{mathrm{2}}}}:=:frac{mathit{N_{mathrm{1}}}}{mathit{N_{mathrm{2}}}}}$$

$$mathrm{Rightarrow mathit{V_{mathrm{2}}}:=:mathit{V_{mathrm{1}}} imes frac{mathit{N_{mathrm{2}}}}{mathit{N_{mathrm{1}}}}:=:220 imes frac{400}{1000}}$$

$$mathrm{ hereforemathit{V_{mathrm{2}}}:=:88:mathrm{Volts}}$$

The volts per turn is given by,

$$mathrm{mathrm{For: primary: winding}:=:frac{mathit{V_{mathrm{1}}}}{mathit{N_{mathrm{1}}}}:=:frac{200}{1000}:=:0.22:mathrm{Volts}}$$

$$mathrm{mathrm{For: Secondary: winding}:=:frac{mathit{V_{mathrm{2}}}}{mathit{N_{mathrm{2}}}}:=:frac{88}{400}:=:0.22:mathrm{Volts}}$$

Hence, from this example, it is clear that the volts per turn for a transformer remain the same on both primary and secondary windings.

Numerical Example (2)

A transformer with an output voltage of 2200 V is suppped at 220 V. If the secondary winding has 2000 turns, then calculate the number of turns in primary winding.

Solution

Given data,

$$mathrm{mathit{V_{mathrm{1}}}:=:200:mathit{V}:mathrm{and}:mathit{V_{mathrm{2}}}:=:2200:mathit{V}}$$

$$mathrm{mathit{N_{mathrm{2}}}:=:2000:mathrm{turns}}$$

The turns ratio of transformer is,

$$mathrm{frac{mathit{V_{mathrm{1}}}}{mathit{V_{mathrm{2}}}}:=:frac{mathit{N_{mathrm{1}}}}{mathit{N_{mathrm{2}}}}}$$

$$mathrm{Rightarrow {mathit{N_{mathrm{1}}}}:=:mathit{N_{mathrm{2}}}: imes :frac{mathit{V_{mathrm{1}}}}{mathit{V_{mathrm{2}}}}:=:mathrm{2000}: imes :frac{220}{2200}:=:mathrm{200:turns}}$$

Ideal and Practical Transformers

Ideal Transformer

An ideal transformer is an imaginary model of the transformer which possesses the following characteristics −

    The primary and secondary windings have negpgible (or zero) resistance.

    It has no leakage flux, i.e., whole of the flux flows through the magnetic core of the transformer.

    The magnetic core has infinite permeabipty, which means it requires negpgible MMF to estabpsh flux in the core.

    There are no losses due winding resistances, hysteresis and eddy currents. Hence, its efficiency is 100 %.

Working of an Ideal Transformer

We may analyze the operation of an ideal transformer either on no-load or on-load, which is discussed in the following sections.

Ideal Transformer on No-Load

Consider an ideal transformer on no-load, i.e., its secondary winding is open circuited, as shown in Figure-1. And, the primary winding is a coil of pure inductance.

Noload

When an alternating voltage $mathit{V_{mathrm{1}}}$ is appped to the primary winding, it draws a very small magnetizing current $mathit{I_{mathit{m}}}$ to estabpsh flux in the core, which lags behind the appped voltage by 90°. The magnetizing current Im produces an alternating flux $mathit{phi_{m}}$ in the core which is proportional to and in phase with it. This alternating flux ($mathit{phi_{m}}$) pnks the primary and secondary windings magnetically and induces an EMF $mathit{E_{mathrm{1}}}$ in the primary winding and an EMF $mathit{E_{mathrm{2}}}$ in the secondary winding.

The EMF induced in the primary winding $mathit{E_{mathrm{1}}}$ is equal to and opposite of the appped voltage $mathit{V_{mathrm{1}}}$ (according to Lenz’s law). The EMFs $mathit{E_{mathrm{1}}}$ and $mathit{E_{mathrm{2}}}$ lag behind the flux ($mathit{phi_{m}}$) by 90°, however their magnitudes depend upon the number of turns in the primary and secondary windings. Also, the EMFs $mathit{E_{mathrm{1}}}$ and $mathit{E_{mathrm{2}}}$ are in phase with each other, while $mathit{E_{mathrm{1}}}$ is equal to $mathit{V_{mathrm{1}}}$ and 180° out of phase with it.

Ideal Transformer on On-Load

When a load is connected across terminals of the secondary winding of the ideal transformer, the transformer is said to be loaded and a load current flows through the secondary winding and load.

Onload

Consider an inductive load of impedance connected across the secondary winding of the ideal transformer as shown in Figure-2. Then, the secondary winding EMF $mathit{E_{mathrm{2}}}$ will cause a current $mathit{I_{mathrm{2}}}$ to flow through the secondary winding and load, which is given by,

$$mathrm{mathit{I_{mathrm{2}}}:=:frac{mathit{E_{mathrm{2}}}}{mathit{Z_{mathit{L}}}}:=:frac{mathit{V_{mathrm{2}}}}{mathit{Z_{mathit{L}}}}}$$

Where, for an ideal transformer, the secondary winding EMF $mathit{E_{mathrm{2}}}$ is equal to the secondary winding terminal voltage $mathit{V_{mathrm{2}}}$.

Since we considered an inductive load, therefore, the current $mathit{I_{mathrm{2}}}$ will lag behind $mathit{E_{mathrm{2}}}$ or $mathit{V_{mathrm{2}}}$ by an angle of $mathit{phi_{mathrm{2}}}$. Also, the no-load current $mathit{I_{mathrm{0}}}$ being neglected because the transformer is ideal one.

The current flowing in the secondary winding ($mathit{I_{mathrm{2}}}$) sets up an MMF ($mathit{I_{mathrm{2}}}mathit{N_{mathrm{2}}}$) which produces a flux $mathit{phi_{mathrm{2}}}$ in opposite direction to the main flux ($mathit{phi_{mathit{m}}}$). As a result, the total flux in the core changes from its original value, however, the flux in the core should not change from its original value. Therefore, to maintain the flux in the core at its original value, the primary current must develop an MMF which can counter-balance the demagnetizing effect of the secondary MMF $mathit{I_{mathrm{2}}}mathit{N_{mathrm{2}}}$.

Hence, the primary current $mathit{I_{mathrm{1}}}$ must flow so that

$$mathrm{mathit{I_{mathrm{1}}}mathit{N_{mathrm{1}}}:=:mathit{I_{mathrm{2}}}mathit{N_{mathrm{2}}}}$$

Therefore, the primary winding must draw enough current to neutrapze the demagnetizing effect of the secondary current so that the main flux in the core remains constant. Hence, when the secondary current ($mathit{I_{mathrm{2}}}$) increases, the primary current ($mathit{I_{mathrm{1}}}$) also increases in the same manner and keeps the mutual flux ($mathit{phi_{mathit{m}}}$) constant.

In an ideal transformer on-load, the secondary current $mathit{I_{mathrm{2}}}$ lags behind the secondary terminal voltage $mathit{V_{mathrm{2}}}$ by an angle of $mathit{phi _{mathrm{2}}}$.

Practical Transformer

A practical transformer is one which possesses the following characteristics −

    The primary and secondary windings have finite resistance.

    There is a leakage flux, i.e., whole of the flux is not confined to the magnetic core.

    The magnetic core has finite permeabipty, hence a considerable amount of MMF is require to estabpsh flux in the core.

    There are losses in the transformer due to winding resistances, hysteresis and eddy currents. Therefore, the efficiency of a practical transformer is always less than 100 %.

The analytical model of a typical practical transformer is shown in Figure-3.

Practical transformer

Characteristics of a Practical Transformer

Following are the important characteristics of a Practical Transformer −

Winding Resistances

The windings of a transformer are usually made up of copper conductors. Therefore, both the primary and secondary windings will have winding resistances, which produce the copper loss or $mathit{i^{mathrm{2}} mathit{R}}$ loss in the transformer. The primary winding resistance $mathit{R_{mathrm{1}}}$ and the secondary winding resistance $mathit{R_{mathrm{2}}}$ act in series with the respective windings as shown in Figure-3.

Iron Losses or Core Losses

The core of the transformer is subjected to the alternating magnetic flux, hence the eddy current loss and hysteresis loss occur in the core. The hysteresis loss and eddy current loss together are known as iron loss or core loss. The iron loss of the transformer depends upon the supply frequency, maximum flux density in the core, volume of the core and thickness of the laminations etc. In a practical transformer, the magnitude of iron loss is practically constant and very small.

Leakage Flux

The current through the primary winding produces a magnetic flux. The flux $mathit{phi _{mathit{m}}}$ which pnks both primary and secondary windings is the useful flux and is known as mutual flux. However, a fraction of the flux ($mathit{phi _{mathrm{1}}}$) produced by the primary current does not pnk with the secondary winding.

When a load is connected across the secondary winding, a current flows through it and produces a flux ($mathit{phi _{mathrm{2}}}$), which pnks only with the secondary winding. Thus, the part of $mathit{phi _{mathrm{1}}}$, and the flux $mathit{phi _{mathrm{2}}}$ that pnk only their respective winding are known as leakage flux.

The leakage flux has its path through the air which has very high reluctance. Therefore, the effect of primary leakage flux ($mathit{phi _{mathrm{1}}}$) is to introduce an inductive reactance ($ mathit{X_{mathrm{1}}}$) in series with the primary winding. Similarly, the secondary leakage flux ($mathit{phi _{mathrm{2}}}$) introduces an inductive reactance ($ mathit{X_{mathrm{2}}}$) in series with the secondary winding as shown in Figure-3.

However, the leakage flux in a practical transformer is very small (about 5% of $mathit{phi _{m}}$), yet it cannot be ignored. Because the leakage flux paths are through the air, which has very high reluctance. Thus, it requires considerable MMF.

Finite Permeabipty of Core Material

In general, the practical transformers have a core made up of high grade sipcon steel, which has a specific relative permeabipty ($mathit{mu _{r}}$). Thus, the core saturates at a certain value of magnetic flux density. Therefore, the core of a practical transformer has finite permeabipty and hence possesses reluctance in the path of magnetic flux.

Transformer on DC

In the introductory chapter, we defined an electrical transformer as an AC machine because it works only on alternating current electricity. Therefore, a transformer cannot change (increase or decrease) the value of the DC voltage. In this chapter, we shall know the reason, why a transform does not work on the direct current (DC).

DC Transformer

Consider an electrical transformer as shown in Figure-1, and it is connected to a battery (or a source of DC voltage) V. When, we apply this DC voltage V to the primary winding of the transformer, it will draw a constant current (DC) and therefore produces a constant magnetic flux flowing through the magnetic core.

According to the principle of electromagnetic induction, an EMF can induce in a coil or conductor only when it is subjected to a changing magnetic field, i.e.,

$$mathrm{mathit{e}:=:mathit{N}frac{mathit{dphi }}{mathit{dt}}}$$

Consequently, the appped DC voltage to the primary winding does not induce EMF in the primary winding or secondary winding. Hence, this discussion proves that a transformer does not work on DC supply. In fact, connecting a DC supply to the primary winding of a transformer could be dangerous.

Equivalent Circuit

The equivalent primary winding circuit of a transformer connected to the DC voltage is shown in Figure-2. In this case, there is no self-induced EMF in the primary winding to oppose the appped voltage V (according to Lenz’s law), and the current in the primary winding is given by,

$$mathrm{mathit{I_{mathrm{1}}}:=:frac{mathit{V}}{mathit{R_{mathrm{1}}}}}$$

Where, $mathit{R_{mathrm{1}}}$ is the resistance of the primary winding. Due to very small value of R1, the current $mathit{I_{mathrm{1}}}$ through the primary winding will be very large. This large current will cause the overheating and burning of the transformer or fuses will blow. Therefore, we must not connect the primary winding of a transformer to the DC supply because it may damage the transformer or may cause an electrical accident.

Losses in a Transformer

The following power losses may occur in a practical transformer −

    Iron Loss or Core Loss

    Copper Loss or I2R Loss

    Stray Loss

    Dielectric Loss

In a transformer, these power losses appear in the form of heat and cause two major problems −

    Increases the temperature of the transformer.

    Reduces the efficiency of the transformer.

Iron Loss or Core Loss

Iron loss occurs in the magnetic core of the transformer due to flow of alternating magnetic flux through it. For this reason, the iron loss is also called core loss. We generally use the symbol ($mathit{P_{i}}$) to represent the iron loss. The iron loss consists of hysteresis loss ($mathit{P_{h}}$) and eddy current loss ($mathit{P_{e}}$). Thus, the iron loss is given by the sum of the hysteresis loss and eddy current loss, i.e.

$$mathrm{mathrm{Iron:loss,}mathit{P_{i}}:=:mathrm{Hysteresies:loss(mathit{P_{h}})}:+:mathrm{Eddy:current:loss(mathit{P_{e}})}}$$

The hysteresis loss and eddy current loss (or iron loss) are determined by performing the open-circuit test on the transformer.

The empirical formulae for the hysteresis loss and eddy current loss are given by,

$$mathrm{mathit{P_{h}}:=:mathit{k_{h}f:B_{m}^{x}}:cdot cdot cdot (1)}$$

$$mathrm{mathit{P_{e}}:=:mathit{ke:B_{m}^{mathrm{2}}:f^{mathrm{2}}t^{mathrm{2}}}:cdot cdot cdot (2)}$$

Where,

    The exponent of Bm, i.e. "x" is called the Steinmetz’s constant. Depending on the properties of the core material, its value is ranging from 1.5 to 2.5.

    kh is a proportionapty constant whose value depends upon the volume and quapty of the material of core.

    ke is a proportionapty constant which depend on the volume and resistivity of material of the core.

    f is the frequency of the alternating flux in the core.

    Bm is the maximum flux density in the core.

    t is the thickness of each core lamination.

Therefore, the total iron loss or core loss can also be written as,

$$mathrm{mathit{P_{i}}:=:mathit{k_{h}f:B_{m}^{x}}:+:mathit{ke:B_{m}^{mathrm{2}}:f^{mathrm{2}}t^{mathrm{2}}}:cdot cdot cdot (3)}$$

Since the input voltage to the transformer is approximately equal to the induced voltage in the primary winding, i.e.

$$mathrm{mathit{V_{mathrm{1}}}:=:mathit{E_{mathrm{1}}}:=:4.44:mathit{fphi _{m}N_{mathrm{1}}}}$$

$$mathrm{Rightarrow mathit{V_{mathrm{1}}}:=:4.44:mathit{f:B_{m}AN_{mathrm{1}}}}$$

Where, A is the cross-sectional area of the transformer core, N1 is the number of turns in the primary winding and f is the supply frequency.

$$mathrm{ herefore mathit{B_{m}}:=:frac{mathit{V_{mathrm{1}}}}{4.44mathit{fAN_{mathrm{1}}}}:cdot cdot cdot (4)}$$

Hence, from equations (1) & (4), we get,

$$mathrm{mathit{P_{h}}:=:mathit{k_{h}f}left ( frac{mathit{V_{mathrm{1}}}}{4.44mathit{fAN_{mathrm{1}}}} ight )^{x}}$$

$$mathrm{Rightarrow mathit{P_{h}}:=:mathit{k_{h}f}left ( frac{mathrm{1}}{4.44mathit{AN_{mathrm{1}}}} ight )^{x}cdot left ( frac{mathit{V_{mathrm{1}}}}{mathit{f}} ight )^{x}}$$

$$mathrm{Rightarrow mathit{P_{h}}:=:mathit{k_{h}}left ( frac{mathrm{1}}{4.44mathit{AN_{mathrm{1}}}} ight )^{x}cdot mathit{V_{mathrm{1}}^{x}}:mathit{f^{(mathrm{1}-x)}}:cdot cdot cdot (5)}$$

Thus, Equation (5) shows that the hysteresis loss depends upon both input voltage and supply frequency.

Again, from equations (2) & (4), we get,

$$mathrm{mathit{P_{e}}:=:mathit{k_{e}f^{mathrm{2}}t^{mathrm{2}}}left ( frac{mathit{V_{mathrm{1}}}}{4.44mathit{fAN_{mathrm{1}}}} ight )^{mathrm{2}}}$$

$$mathrm{Rightarrow mathit{P_{e}}:=:mathit{k_{e}left ( frac{mathit{V_{mathrm{1}}}}{mathrm{4.44}mathit{AN_{mathrm{1}}}} ight )^{mathrm{2}}mathit{t^{mathrm{2}}}:cdot cdot cdot mathrm{(6)}}}$$

Hence, from equation (6), we can conclude that the eddy current loss in the transformer is proportional to the square of the input voltage and is independent of the supply frequency.

Therefore, the total core loss can also be written as,

$$mathrm{mathit{P_{i}}:=:mathit{k_{h}left ( frac{mathrm{1}}{mathrm{4.44}mathit{AN_{mathrm{1}}}} ight )^{mathrm{2}}cdot mathit{V_{mathrm{1}}^{mathit{x}}f^{(mathrm{1-x})}}:+:mathit{k_{e}}left ( frac{V_{mathrm{1}}}{mathrm{4.44}mathit{AN_{mathrm{1}}}} ight )^{mathrm{2}}mathit{t^{mathrm{2}}}:cdot cdot cdot left ( mathrm{7} ight )}}$$

In practice, transformers are connected to an electric supply of constant frequency and constant voltage, thus, both f and Bm are constant. Therefore, the core or iron loss is practically remains constant at all loads.

We can reduce the hysteresis loss by using steel of high sipcon content to construct the core of transformer while the eddy current loss can be minimized by using core of thin laminations instead of sopd core. The open-circuit test is performed on a transformer to determine the iron or core loss.

Copper Loss or I2R Loss

Power loss in a transformer that occurs in both the primary and secondary windings due to their Ohmic resistance is called copper loss or I2R loss. We usually represent the copper loss by PC. Therefore, the total copper loss in a transformer is the sum of power loss in the primary winding and power loss in the secondary winding, i.e.,

$$mathrm{mathit{P_{c}}:=:mathrm{Copper:loss:in:primary:+:Copper:loss:in:secondary}}$$

$$mathrm{Rightarrow mathit{P_{c}}:=:mathit{I_{mathrm{1}}^{mathrm{2}}}mathit{R_{mathrm{1}}}:+:mathit{I_{mathrm{2}}^{mathrm{2}}}mathit{R_{mathrm{2}}}:cdot cdot cdot (8)}$$

Since,

$$mathrm{mathit{I_{mathrm{1}}}mathit{N_{mathrm{1}}}:=:mathit{I_{mathrm{2}}}mathit{N_{mathrm{2}}}}$$

$$mathrm{Rightarrow mathit{I_{mathrm{1}}}:=:left ( frac{mathit{N_{mathrm{2}}}}{mathit{N_{mathrm{1}}}} ight )mathit{I_{mathrm{2}}}:cdot cdot cdot (9)}$$

$$mathrm{ herefore mathit{P_{c}}:=:left [ left ( frac{mathit{N_{mathrm{2}}}}{mathit{N_{mathrm{1}}}} ight )I_{mathrm{2}} ight ]^{mathrm{2}}:mathit{R_{mathrm{1}}}:+:mathit{I_{mathrm{2}}^{mathrm{2}}}mathit{R_{mathrm{2}}}:=:left [ left ( frac{mathit{N_{mathrm{2}}}}{mathit{N_{mathrm{1}}}} ight )^{mathrm{2}}mathit{R_{mathrm{1}}}:+:mathit{R_{mathrm{2}}} ight ]mathit{I_{mathrm{2}}^{mathrm{2}}}:cdot cdot cdot (10)}$$

From Equation (10), it is clear that the copper loss in a transformer varies as the square of the load current. For this reason, the copper loss is also referred as "variable loss" because in practice a transformer is subjected to variable load and hence has variable load current.

We conduct the "short-circuit test" on the transformer to determine the value of its copper loss. In a practical transformer, the copper loss accounts for about 90% of the total power loss in the transformer.

Stray Loss

In practical transformer, a fraction of the total flux follows a path through air and this flux is called leakage flux. This leakage flux produces eddy currents in the conducting or metalpc parts pke tank of the transformer. These eddy currents cause power loss, which is known as stray loss.

Dielectric Loss

The power loss occurs in insulating materials pke oil, sopd insulation of the transformer, etc. is known as dielectric loss. The dielectric loss is significant only in transformers working on high voltages.

Although, in practice, the stray loss and dielectric loss are very small, constant and may be neglected.

From the above discussion, we found that a transformer has some losses which are constant and some other are variable. Thus, we may categorize losses in a transformer in two types namely constant losses and variable losses.

Therefore, the total losses in a transformer are the sum of constant losses and variable losses, i.e.,


Total losses in transformer = Constant losses + Variable losses

Efficiency of Transformer

Transformer Efficiency

The ratio of the output power to the input power in a transformer is known as efficiency of transformer. The transformer efficiency is represented by Greek letter Eta ($eta $).

$$mathrm{mathrm{Efficiency,}eta :=:frac{Output:Power}{Input:Power}}$$

From this definition, it appears that we can determined the efficiency of a transformer by directly loading the transformer and measuring the input power and output power. Although, this method of efficiency determination has the following disadvantages −

    In practice, the efficiency of a transformer is very high, and a very small error (let say 1%) in input and output wattmeters may give ridiculous results. Consequently, this method may give efficiency more than 100%.

    In this method, the transformer is loaded, hence a considerable amount of power is wasted. Therefore, this method becomes uneconomical for large transformers.

    It is very difficult to find a load which is capable of absorbing all of the output power.

    This method does not provide any information about losses in the transformer.

Thus, due to these pmitations, the direct-loading method is rarely used to determine the efficiency of a transformer. In practice, we use open-circuit and short-circuit tests to find out the transformer efficiency.

For a practical transformer, the input power is given by,

$$mathrm{mathrm{Input:power}:=:mathrm{Output:power:+:Losses}}$$

Therefore, the transformer efficiency can also be calculated using the following expression −

$$mathrm{eta :=:frac{Output:power}{Output:power:+:Losses}}$$

$$mathrm{Rightarrow eta :=:frac{VA imes Power:Factor}{left ( VA imes Power:Factor ight ):+:Losses}}$$

Where,

$$mathrm{mathrm{Output:power}:=:VA imes Power:factor}$$

And, losses can be determined by transformer tests.

Efficiency from Transformer Tests

When we perform transformer tests, the following results are obtained −

    From open-circuit test −

$$mathrm{mathrm{Full:load:iron:loss}:=:mathit{P_{i}}}$$

    From short-circuit test −

$$mathrm{mathrm{Full:load:copper:loss}:=:mathit{P_{c}}}$$

Therefore, the total losses at full load in a transformer are

$$mathrm{mathrm{Total:FL:losses}:=:mathit{P_{i}+:P_{c}}}$$

Now, we are able to determine the full-load efficiency of the transformer at any power factor without actual loading the transformer.

$$mathrm{mathit{n_{FL}}:=:frac{(VA)_{mathit{FL}} imes Power:factor}{[(VA)_{mathit{FL}} imes Power:factor]+:mathit{P_{i}}+mathit{P_{c}}}}$$

Also, the transformer efficiency at any load equal to x × full load. Where, x is the fraction of loading. In this case, the total losses corresponding to the given load are,

$$mathrm{(Total:losses)_{x}:=:mathit{P_{i}+:x^{mathrm{2}}mathit{P_{c}}}}$$

It is because, the iron loss ($mathit{P_{i}}$) is the constant loss and hence remains the same at all loads, while the copper loss is proportional to the square of the load current.

$$mathrm{ hereforeeta _{x}:=: frac{mathit{x} imes (VA)_{mathit{FL}} imes Power:factor}{[mathit{x} imes (VA)_{mathit{FL}} imes Power:factor]+:mathit{P_{i}}+:x^{mathrm{2}}mathit{P_{c}}}}$$

Condition for Maximum Efficiency

For a given transformer, we have,

$$mathrm{mathrm{Output:power}:=:mathit{V_{mathrm{2}}I_{mathrm{2}}cosphi _{mathrm{2}}}}$$

Let the transformer referred to secondary side, then Ro2 is the total resistance of the transformer. The total copper loss is given by,

$$mathrm{mathit{P_{c}}:=:mathit{I_{mathrm{2}}^{mathrm{2}}mathit{R_{omathrm{2}}}}}$$

Therefore, the transformer efficiency is given by,

$$mathrm{eta :=:frac{mathit{V_{mathrm{2}}}I_{mathrm{2}}cosphi _{mathrm{2}}}{mathit{V_{mathrm{2}}I_{mathrm{2}}cosphi _{mathrm{2}}}+mathit{P_{i}}+mathit{I_{mathrm{2}}^{mathrm{2}}}R_{omathrm{2}}}}$$

On rearranging the expression, we get,

$$mathrm{eta :=:frac{mathit{V_{mathrm{2}}}cosphi _{mathrm{2}}}{mathit{V_{mathrm{2}}cosphi _{mathrm{2}}}+left ( mathit{frac{P_{i}}{I_{mathrm{2}}}} ight )+mathit{I_{mathrm{2}}}R_{omathrm{2}}}:=:mathit{frac{V_{mathrm{2}}cosphi _{mathrm{2}}}{D}}:cdot cdot cdot (1)}$$

In practice, the secondary voltage V2 is approximately constant. Hence, for a load of given power factor, the transformer efficiency depends upon the load current (I2). From the equation (1), we can see that the numerator is constant and for the efficiency to be maximum, the denominator (D) should be minimum, i.e.

$$mathrm{mathit{frac{d(D)}{dI_{mathrm{2}}}}:=:0}$$

$$mathrm{Rightarrowmathit{frac{d}{dI_{mathrm{2}}}}left [ mathit{V_{mathrm{2}}cosphi _{mathrm{2}}}+left ( mathit{frac{P_{i}}{I_{mathrm{2}}}} ight )+mathit{I_{mathrm{2}} R_{0mathrm{2}}} ight ]:=:0}$$

$$mathrm{Rightarrow 0-left ( mathit{frac{P_{i}}{I_{mathrm{2}}}} ight )+mathit{R_{omathrm{2}}}:=:0}$$

$$mathrm{Rightarrow mathit{P_{i}}:=:mathit{I_{mathrm{2}}^{mathrm{2}}R_{omathrm{2}}}}$$

$$mathrm{Rightarrow mathrm{Iron:loss}:=:Copper:loss}$$

Therefore, the transformer efficiency for a given power factor will be maximum when the constant iron loss is equal to the variable copper loss.

The maximum efficiency at any load is given by,

$$mathrm{mathit{eta _{max}}:=:frac{mathit{x imes (VA)_{mathit{FL}} imes mathrm{Power:factor}}}{[mathit{x imes (VA)_{mathit{FL}}} imes Power:fctor]+:2mathit{P_{i}}}}$$

Also, the load current (I2) corresponding to the maximum efficiency of transformer is,

$$mathrm{mathit{I_{mathrm{2}}}:=:sqrt{frac{mathit{P_{i}}}{R_{o2}}}}$$

Numerical Example

In a 100 kVA transformer, the iron loss is 450 W and full-load copper loss is 900 W. Find the transformer efficiency at full load and the maximum efficiency of the transformer, where the load power factor is 0.8 lagging.

Solution

Given data,

    Full load VA = 100 kVA = 100 × 1000 VA

    Iron loss,Pi = 450 W

    Copper loss,Pc = 900 W

    cos$mathit{phi _{mathrm{2}}}$ = 0.8

Transformer efficiency at full-load −

$$mathrm{mathrm{Total:losses}:=:450:+:900:=:1350:W}$$

$$mathrm{mathit{eta _{mathit{FL}}}:=:frac{(VA)_{mathit{FL}} imes Power:factor}{[(VA)_{mathit{FL}} imes Power:factor]+:Total:losses}}$$

$$mathrm{Rightarrow mathit{eta _{mathit{FL}}}:=:frac{100 imes 1000 imes 0.8}{(100 imes 1000 imes 0.8)+1350}:=:frac{80000}{81350}:=:0.9834}$$

$$mathrm{ herefore eta _{mathit{FL}}:=:0.9834 imes 100\%:=:98.34\%}$$

Maximum efficiency of the transformer −

For maximum efficiency,

$$mathrm{mathrm{Iron:loss}:=:Copper:Loss}$$

$$mathrm{ herefore eta _{mathit{max}}:=:frac{(VA)_{mathit{FL}} imes Power:factor}{[(VA)_{mathit{FL}} imes Power:factor]+2mathit{P_{i}}}}$$

$$mathrm{Rightarrow eta _{mathit{max}}:=:frac{100 imes 1000 imes 0.8}{(100 imes 1000 imes 0.8)+(2 imes 450)}:=:0.9888}$$

$$mathrm{ herefore eta _{mathit{max}}:=:0.9888 imes 100\%:=:98.88\%}$$

Three-Phase Transformer

In practice, electrical power is generated, transmitted and distributed by using three-phase system. Therefore, we require a three-phase transformer to step-up or step-down the voltage at various stages of a power system network.

We can construct a three-phase transformer in one of the following two ways −

    We can connect three separate single-phase transformers for 3-phase operation. This arrangement is known as a three-phase bank of transformers.

    We can construct a single three-phase transformer which consists of a magnetic core and having windings for all the three phases. This whole assembly is combined in a single structure.

The windings of a three-phase transformer may be connected in the following ways −

    Star-Star Connection − In this case, both primary and secondary windings are connected in star connection.

    Delta-Delta Connection − In this case, both primary and secondary windings are connected in delta connection.

    Delta-Star Connection − In this case, the primary winding is connected in delta, while the secondary winding is connected in star.

    Star-Delta Connection − In this case, the primary winding is connected in star while the secondary winding is connected in delta.

Construction of Three Phase Transformer

A three phase transformer can be constructed in two ways namely core-type construction and shell-type construction.

Core Type Construction

In the core type construction of 3-phase transformer, the magnetic core has three vertical pmbs and two horizontal sections as shown in Figure-1. Here, one pair of primary and secondary windings is placed on each pmb. The low voltage (lv) winding is placed next to the core while the high-voltage (hv) winding is wound around the lv winding.

Core Type3

Shell Type Construction

A shell type three-phase transformer can be constructed by stacking three single-phase shell-type transformers together as shown in Figure-2. In this case, both primary and secondary windings are placed on the central pmb and the two outer pmbs serve the path for flux. The behavior of a shell-type three-phase transformer is almost similar to that of a bank of three single-phase transformers.

Shell Type3

Advantages of a Bank of Three Single Phase Transformers

The following are the major advantages that a bank of three single-phase transformers have over a three-phase unit transformer −

    When one 1-phase transformer of a bank of transformers is damaged and isolated from the service, the remaining two transformers may be used to supply power in open-delta connection.

    In the bank of transformers, we can provide a single-phase transformer with higher kVA rating than the others to supply an imbalance load.

    For a bank of three single-phase transformers, the standby requirement is lesser.

    It is more convenient to transport a 1-phase transformer than a 3-phase transformer.

Advantages of a Three Phase Unit Transformer

For the same kVA rating, a three-phase unit transformer has the following advantages over a bank of three single-phase transformers −

    A three-phase unit transformer is smaller in size, pght in weight and cheaper.

    It is more efficient than bank of transformers.

    Its installation is simple.

Depending upon the requirements, we use both bank of transformers and a three-phase unit transformer. However, it is a common practice to use a three-phase unit transformer.

Types of Transformers

Depending on the number of turns in primary and secondary windings, the transformers may be classified into the following three types −

    Step-up transformer

    Step-down transformer

    One-to-one transformer

Depending on the apppcation, we may classify the transformers in the following three main types

    Power transformers

    Distribution transformers

    Instrument transformers

Step-Up Transformer

A transformer in which the number of turns in the secondary winding are greater than the number of turns in the primary winding, as a result its output voltage is greater than the input voltage is known as a step-up transformer. In power systems, the step-up transformer is used to increase the low voltages to a higher value for transmission purposes.

Step-Down Transformer

A transformer in which the number of turns in the secondary winding are less than that in the primary winding as a result the output voltage is less than the input voltage is known as a step-down transformer. In power systems, the step-down transformers are used to decrease the high-voltages to a lower value for distribution and utipzation purposes.

One-to-One (1:1) Transformer

A transformer in which the number of turns in both primary winding and secondary winding are same so that it produces an output voltage equal to the input voltage is known as a one-to-one transformer. It is also known as isolation transformer. It finds apppcation in such areas where two electrical circuits are required to be isolated electrically, but coupled magnetically for power transfer.

Power Transformers

A transformer with high volt-ampere (VA) rating, commonly of the order of Mega or Giga, is referred as a power transformer. The power transformers are designed to operate with an almost constant load which is equal to their rating. These transformers are used in generating stations, receiving stations and substations at ends of the power transmission pnes for stepping-up or stepping-down the voltage.

In practice, power transformers are put into operation during load periods while they are disconnected during pght load periods. These transformers are designed to have maximum efficiency at or near full-load. However, power transformers are so designed that they have considerably high leakage reactance. Thus, for power transformers the current pmiting effect of high leakage reactance is more important than the voltage regulation.

Distribution Transformers

The transformer which is used to reduce the high voltage to a low value for distribution purpose is known as a distribution transformer. Distribution transformers are designed to operate with variable load which is considerably less than their rating. Therefore, these transformers are designed to have maximum efficiency at the load between ½ and ¾ of the full-load. Distribution transformers are kept in operation all the 24 hours of a day whether they are carrying any load or not. Distribution transformers have a good voltage regulation, and are designed to have a small value of leakage reactance.

Instrument Transformers

It is very difficult to measure high alternating currents and voltages with simple measuring devices. Thus, to make the measurement of high alternating currents and voltages simple, we use specially designed transformers, called instrument transformers. By employing instrument transformers, we can measure high alternating quantities with low-range AC measurement devices.

Depending on the type of quantity transformed, instrument transformers are of the following two types −

    Current Transformer (C.T.)

    Potential Transformer (P.T.)

Current Transformer

A current transformer is a type of instrument transformer which is used to decrease the high alternating current of power pne to a measurable low value. Basically, a current transformer is a voltage step-up and current step-down transformer. It has a primary winding of a few turns of thick wire, and a secondary winding having more turns of fine wire. The primary winding of CT is connected in series with the pne whose current is to be measured, and the secondary winding is connected across a low-range AC ammeter to measure and indicate the current.

Potential Transformer

A potential transformer is a voltage step-down transformer which is used to reduce the high pne voltages to a measurable value. The primary winding of a PT has many turns while the secondary winding has few turns. The primary winding is connected across the power pne whose voltage is to be measured and the secondary winding is connected across a low-range AC voltmeter to indicate the measured voltage value.

Construction of DC Machines

An electromechanical device which can convert direct current (dc) electricity into mechanical energy or mechanical energy into direct current (dc) electricity is known as a DC machine.

If the DC machine converts DC electrical energy into mechanical energy, it is known as DC motor. If the machine converts mechanical energy into DC electrical energy, then it is known as a DC generator. Both DC motor and DC generator have the similar construction.

A typical DC machine consists of the following major parts −

    Yoke or Frame

    Armature

    Field System

    Commutator

    Brushes

    Bearings

The schematic diagram of a DC machine is shown below −

DC Machine

Let us now discuss each of these components in greater detail.

Yoke or Frame

The yoke is the outer frame of the DC machine. It is made up of such materials that have high permeabipty and high mechanical strength. In practice, the yoke of DC machine is made up of cast steel.

The yoke or frame of the DC machine serves the following main purposes −

    It protects the internal machine parts pke armature, windings, field poles, etc. against mechanical damages.

    The yoke houses the magnetic field system.

    It provides a low reluctance path to the working magnetic flux.

    It supports the rotor or armature through bearings.

Armature

In DC machines (motor or generator), armature is a system of conductors or coils that can rotate freely on the supporting bearings. The working torque and EMF are developed in coils of the armature. The armature consists of two main parts namely, armature core and armature winding.

The armature core is a sopd cypndrical structure, made up of high permeabipty thin sipcon steel laminations. On the outer periphery of the core slots are cut to carry the armature winding.

The armature winding is made up of copper wires. The armature winding of DC machine is generally former wound. Depending upon the end connections of the armature conductors, the armature winding may be of two types namely lap winding and wave winding. The type of winding decides the voltage and current rating of the machine. In case of the lap winding, the number of parallel paths (A) for current to flow are equal to the number of poles (P) in the machine. On the other hand, for wave winding, the number of parallel paths (A) are equal to 2.

Field System

Field system is the part of a DC machine which produces the working magnetic flux in the machine. It is basically a system of electromagnets which is excited by a DC supply. In case of DC machine, the field system is a stationary part of the machine and it is bolted to the yoke or frame of the machine. There are three main parts of a field system in dc machines namely pole core, pole shoes, and field coils.

The pole core is made up of thin steel laminations. One end of the pole core is bolted to the frame and other end has pole shoe. The pole core carries the field winding.

The pole shoe is a projected part of the pole core and has a large area of cross-section. Pole shoes help in spreading the magnetic flux uniformly in the air gap, and offers low reluctance path to the magnetic flux. Also, it supports the field winding.

The field coil or winding is made up of copper wire. The field winding is former wound and inserted around the pole core. When field windings are excited by DC supply, they become electromagnets and produce magnetic flux in the machine.

Commutator

The commutator is one of the important parts of the DC machine. It is basically mechanical rectifier. It is a cypndrical shaped device and is made up of copper. The outer periphery of the commutator has V-shaped slots to carry commutator segments. Where, the commutator segments are copper bars inserted in the slots. These segments are insulated from each other by mica. The commutator is mounted on the shaft of the DC machine on one side of the armature. The armature conductors are connected to the commutator segments with the help of copper lugs.

The commutator performs the following two major functions −

    In a DC generator, it collects the current from the armature conductor. In a DC motor, it supppes the current to the armature conductors.

    It converts the alternating current of the armature into unidirectional current in the external circuit with the help of brushes, and vice-versa.

Brushes

Brushes are used to make an electrical connection with the rotating commutator. These collect (or supply) current from (or to) the moving commutator. Brushes are usually made up of carbon. They are housed in brush holders and are in contact with the commutator surface with the help of spring pressure.

Bearings

Bearings are used in the DC machine to reduce the frictional losses. Thus, the main function of bearings in the DC machine is to support the machine shaft with minimum friction. In DC machines, ball bearings or roller bearings are commonly used.

Types of DC Machines

A DC machine is a device which converts electrical energy in the form of direct current into mechanical energy or mechanical energy into electrical energy in the form of direct current. Therefore, a DC machine is basically an electromechanical energy conversion device.

Based on the energy conversion, DC machines can be classified into the following two types −

    DC Motor

    DC Generator

The basic construction of both DC motor and DC generator is almost similar. However, the fundamental principles involved in the operation of DC motor and DC generator are different.

Every DC machine essentially consists of a system of conductors and system of magnets or electromagnets. The system of conductor is called armature, and in case of DC machines it is mounted on a movable shaft. The system of magnets or electromagnets is known as the field system, and it produces the required working magnetic flux.

DC Motor

The block diagram of a DC motor is shown in Figure-1.

DC Motor

When the DC machine is designed to convert DC electrical energy into rotational mechanical energy, it is called a DC motor. Therefore, in case of a DC motor, the electrical energy is suppped to the machine through input terminals and mechanical energy output is taken from the shaft in the form of rotation of the shaft.

DC Generator

The block diagram of a DC generator is shown in Figure-2.

DCMachine

A DC machine which can convert mechanical energy input into electrical energy output is known as a DC generator. Thus, in a DC generator, the mechanical energy from a source pke engine, turbine, etc. is suppped to the DC machine in the form of rotational energy of the shaft and the DC electrical energy is received as output from the armature terminals.

Working Principle of DC Generator

The working principle of DC generator is based on the Faraday’s law of electromagnetic induction. According to this law, when the magnetic flux pked to a conductor or coil changes an EMF is induced in the conductor or coil. The magnitude of this induced EMF is given by,

$$mathrm{mathit{e}:=:mathit{N}frac{mathit{dphi }}{mathit{dt}}:cdot cdot cdot (1)}$$

Where, $phi$ is the flux pnkage of the coil and N is the number of turns in the coil.

In case of a DC generator, the magnetic flux ($phi$) remains stationary and the coil rotates. The EMF induced where the coil is rotating and flux is stationary, is known as dynamically induced EMF.

Working Principle

In order to understand the working principle of a DC generator, we consider a single loop DC generator (i.e. N = 1) as shown in above figure. Here, the coil is rotated by some prime mover (a source of mechanical energy), and there is a change in the magnetic flux pnkage to the coil.

Let $phi$ be the average magnetic flux produced by each magnetic pole of the machine, then the average induced EMF in the generator is given by,

$$mathrm{mathit{E_{av}}:=:frac{mathit{dphi }}{mathit{dt}}:=:mathrm{Flux: cut: per:sec:by: the :coil}}$$

$$mathrm{Rightarrow mathit{E_{av}}:=:mathrm{Flux: cut: in :one :rotation: imes :No.:of: rotations: per: sec}}$$

$$mathrm{Rightarrow mathit{E_{av}}:=:mathrm{left ( Flux:per:pole imes No.:of:poles ight )}: imes :mathrm{No.:of :rotations :per: sec}}$$

$$mathrm{ herefore mathit{E_{av}}:=:mathit{phi : imes P: imes :n}:cdot cdot cdot (2)}$$

Where, P is the total number of poles in the generator and n is the speed of the coil in rotation per second. The expression in the Equation-(2) gives the average induced EMF in a single loop DC generator.

The following points explain the working principle of a DC generator −

    Position 1 − The induced EMF is zero because, the movement of coil sides is parallel to the magnetic flux.

    Position 2 − The coil sides are moving at an angle to the magnetic flux, and hence a small EMF is generated in the loop.

    Position 3 − The coil sides are moving at right angle to the magnetic flux, therefore the induced EMF is maximum.

    Position 4 − The coil sides are cutting the magnetic flux at an angle, thus a reduced EMF is induced in the coil sides.

    Position 5 − No flux pnkage with the coil side and the coil sides are moving parallel to the magnetic flux. Therefore, no EMF is induced in the coil.

    Position 6 − The coil sides move under a pole of opposite polarity and hence the polarity of induced EMF is reversed. The maximum EMF will induce in this direction at position 7 and zero when it is at position 1. This cycle repeats with rotation of the coil.

In this way, EMF is induced in a DC generator. Though, this induced EMF is alternating in nature, which is then converted in the unidirectional EMF by using a device called commutator.

The direction of induced EMF in the armature conductor of the DC generator is determined by the Fleming’ right hand rule (FRHR) which we discussed in the module-1 (basic concepts) of this tutorial.

EMF Equation of DC Generator

The expression which gives the magnitude of EMF generated in a DC generator is called EMF equation of DC generator. We shall now drive the expression for the EMF induced in a DC generator.

Let,

    $phi $ = flux per pole

    P = number of poles in the generator

    Z = no.of armature coductors

    A = no.of parallel paths

    N = speed of armature in RPM

    E = EMF generated

Thus, the magnetic flux (in weber) cut by a conductor in one revolution of the armature is given by,

$$mathrm{mathit{dphi :=:P imes phi }}$$

If N is the number of revolution per minute, then the time (in seconds) taken complete one revolution is,

$$mathrm{mathit{dt :=frac{60}{N}}}$$

According to Faraday’s law of electromagnetic induction, the EMF induced per conductor is given by,

$$mathrm{mathrm{EMF/conductor}:=:mathit{frac{dphi }{dt}}:=:frac{mathit{Pphi }}{mathrm{left ( {60/mathit{N}} ight )}}:=:frac{mathit{Pphi N}}{mathrm{60}}}$$

The total EMF generated in the generator is equal to the EMF per parallel path, which is the product of EMF per conductor and the number of conductors in series per parallel path, i.e.,

$$mathrm{mathit{E}:=:left ( EMF/Conductor ight ) imes left ( No.:of:conductors/parallel:path ight )}$$

$$mathrm{Rightarrow mathit{E}:=:frac{mathit{Pphi N}}{60} imes frac{mathit{Z}}{mathit{A}}}$$

$$mathrm{ herefore mathit{E}:=:frac{mathit{NPphi N}}{60mathit{A}}:cdot cdot cdot left ( 1 ight )}$$

Equation (1) is called the EMF equation of DC generator.

For wave winding,

$$mathrm{mathrm{Number:of:parllel:paths,}mathit{A}:=:2}$$

$$mathrm{ herefore mathit{E}:=:frac{mathit{NPphi Z}}{mathrm{120}}}$$

For lap winding,

$$mathrm{mathrm{Number:of:parllel:paths,}mathit{A}:=:mathit{P}}$$

$$mathrm{ herefore mathit{E}:=:frac{mathit{Nphi Z}}{mathrm{60}}}$$

For a given DC generator, Z, P and A are constant so that the generated EMF (E) is directly proportional to flux per pole ($phi$) and speed of armature rotation (N).

Numerical Example

A 6-pole dc generator has 600 armature conductors and a useful flux of 0.06 Wb. What will be the EMF generated, if it is wave connected and lap connected and runs at 1000 RPM?

Solution:

Given data,

    No.of poles,P = 6

    No.of armature conductors,Z = 600

    Flux per pole,$phi$ = 0.06 Wb

    Speed of armature,N = 1000 RPM

For wave-connected generator,

$$mathrm{mathit{E}:=:frac{mathit{NPphi Z}}{mathrm{120}}}$$

$$mathrm{Rightarrow mathit{E}:=:frac{1000 imes6 imes 0.06 imes 600}{120}}$$

$$mathrm{ herefore mathit{E}:=:1800:V}$$

For lap-connected generator,

$$mathrm{mathit{E}:=:frac{mathit{Nphi Z}}{mathrm{60}}}$$

$$mathrm{Rightarrow mathit{E}:=:frac{1000 imes 0.06 imes 600}{60}}$$

$$mathrm{ herefore mathit{E}:=:600:V}$$

Types of DC Generators

In practical DC generators, the magnetic field is produced by electromagnets rather than permanent magnets. The DC generators are then classified based on the connection of field winding in the generator circuit. On this basis, DC generators are classified into the following two types −

    Separately Excited DC Generators

    Self-Excited DC Generators

Separately Excited DC Generator

A DC generator whose magnetic field winding is excited from an independent source of DC electric supply pke battery is called a separately excited DC generator. Figure-1 shows the connection diagram of a separately excited DC generator.

Excited DC

The voltage generated by a separately excited DC generator depends upon the speed of the armature rotation and the field current (i.e. flux in the machine). The greater the speed of armature and field current, greater is the induced EMF in the generator. However, the separately excited DC generators are rarely used in practical apppcations because these require an external source of DC power for field excitation.

Self-Excited DC Generators

The type of DC generator whose magnetic field winding is excited from the output of the generator itself is known as a self-excited DC generator. Depending upon the manner in which the field winding is connected to the armature, self-excited DC generators are classified into the following three types −

    Series DC generator

    Shunt DC generator

    Compound DC generator

Series DC Generator

A dc generator whose field winding is connected in series with the armature so that whole armature current flows through the field winding as well as the load is called a series DC generator. Figure-2 shows the connection diagram of a series DC generator.

Series DC

In case of series dc generator, the field winding carries the whole load current, thus it is made up of thick wire with a few turns, so it possesses minimum resistance. The series DC generator is used in special apppcations pke boosters, etc.

The following are some important expressions for the series DC generator −

$$mathrm{mathrm{Armature:current},mathit{I_{a}}:=:mathit{I_{se}}:=:mathit{I_{L}}}$$

Where,$mathit{I_{se}}$ is the series field current and $mathit{I_{L}}$ is the load current.

$$mathrm{mathrm{Terminal:voltage},mathit{V_{t}}:=:mathit{E-I_{a}left ( mathit{R_{a}+R_{se}} ight )}}$$

Where, E is the generated EMF, $mathit{R_{a}}$ is the armature circuit resistance,$mathit{R_{se}}$ is the series field resistance.

Shunt DC Generator

A DC generator whose field winding is connected in parallel with the armature winding so that terminal voltage of the generator is appped across it, is known as a shunt DC generator. Figure-3 shows the connection diagram of a shunt DC generator.

Shunt DC

In a shunt DC generator, the shunt field winding has a large number of turns of thin wire so it has high resistance, and therefore only a part of armature current flows through it and the rest flows through the load.

The following are important expressions of a shunt DC generator −

$$mathrm{mathrm{Armature:current,}mathit{I_{a}}:=:mathit{I_{L}+I_{sh}}}$$

$$mathrm{mathrm{Shunt:field:current,}mathit{I_{sh}}:=:frac{mathit{V_{t}}}{mathit{R_{sh}}}}$$

$$mathrm{mathrm{Terminal:voltage},mathit{V_{t}}:=:mathit{E-I_{a}R_{a}}}$$

Compound DC Generator

A compound dc generator is one which has two sets of field windings on each magnetic pole – one is in series and the other is in parallel with the armature winding. The compound dc generators may further be spanided into the following two types −

    Short-shunt compound DC generator

    Long-shunt compound DC generator

A short-shunt compound DC generator is one in which only shunt field winding is in parallel with the armature winding as shown in Figure-4.

Short Shunt

A long-shunt compound DC generator is one in which shunt field winding is in parallel with both series field winding and armature winding as shown in Figure-5.

Long Shunt

The following are important expressions for compound DC generators −

For short-shunt generator,

$$mathrm{mathrm{Armature:current,}mathit{I_{a}}:=:mathit{I_{L}+I_{sh}}}$$

$$mathrm{mathrm{Series:field:current,}mathit{I_{se}}:=:mathit{I_{L}}}$$

$$mathrm{mathrm{Shunt:field:current,}mathit{I_{sh}}:=:frac{mathit{V_{t}}+mathit{I_{se}R_{se}}}{R_{sh}}}$$

$$mathrm{mathrm{Terminal:voltage},mathit{V_{t}}:=:mathit{E-I_{a}R_{a}-I_{se}R_{se}}}$$

For long-shunt generator,

$$mathrm{mathrm{Armature:current,}mathit{I_{a}}:=:mathit{I_{L}+I_{sh}}}$$

$$mathrm{mathrm{Series:field:current,}mathit{I_{se}}:=:mathit{I_{a}}}$$

$$mathrm{mathrm{Shunt:field:current,}mathit{I_{sh}}:=:frac{mathit{V_{t}}}{mathit{R_{sh}}}}$$

$$mathrm{mathrm{Terminal:voltage},mathit{V_{t}}:=:mathit{E-I_{a}}left ( mathit{R_{a}+R_{se}} ight )}$$

Working Principle of DC Motor

The working principle of DC generator is based on the Faraday’s law of electromagnetic induction. According to this law, when the magnetic flux pked to a conductor or coil changes an EMF is induced in the conductor or coil. The magnitude of this induced EMF is given by,

$$mathrm{mathit{e}:=:mathit{N}frac{mathit{dphi }}{mathit{dt}}:cdot cdot cdot (1)}$$

Where, $phi$ is the flux pnkage of the coil and N is the number of turns in the coil.

In case of a DC generator, the magnetic flux ($phi$) remains stationary and the coil rotates. The EMF induced where the coil is rotating and flux is stationary, is known as dynamically induced EMF.

Working Principle

In order to understand the working principle of a DC generator, we consider a single loop DC generator (i.e. N = 1) as shown in above figure. Here, the coil is rotated by some prime mover (a source of mechanical energy), and there is a change in the magnetic flux pnkage to the coil.

Let $phi$ be the average magnetic flux produced by each magnetic pole of the machine, then the average induced EMF in the generator is given by,

$$mathrm{mathit{E_{av}}:=:frac{mathit{dphi }}{mathit{dt}}:=:mathrm{Flux: cut: per:sec:by: the :coil}}$$

$$mathrm{Rightarrow mathit{E_{av}}:=:mathrm{Flux: cut: in :one :rotation: imes :No.:of: rotations: per: sec}}$$

$$mathrm{Rightarrow mathit{E_{av}}:=:mathrm{left ( Flux:per:pole imes No.:of:poles ight )}: imes :mathrm{No.:of :rotations :per: sec}}$$

$$mathrm{ herefore mathit{E_{av}}:=:mathit{phi : imes P: imes :n}:cdot cdot cdot (2)}$$

Where, P is the total number of poles in the generator and n is the speed of the coil in rotation per second. The expression in the Equation-(2) gives the average induced EMF in a single loop DC generator.

The following points explain the working principle of a DC generator −

    Position 1 − The induced EMF is zero because, the movement of coil sides is parallel to the magnetic flux.

    Position 2 − The coil sides are moving at an angle to the magnetic flux, and hence a small EMF is generated in the loop.

    Position 3 − The coil sides are moving at right angle to the magnetic flux, therefore the induced EMF is maximum.

    Position 4 − The coil sides are cutting the magnetic flux at an angle, thus a reduced EMF is induced in the coil sides.

    Position 5 − No flux pnkage with the coil side and the coil sides are moving parallel to the magnetic flux. Therefore, no EMF is induced in the coil.

    Position 6 − The coil sides move under a pole of opposite polarity and hence the polarity of induced EMF is reversed. The maximum EMF will induce in this direction at position 7 and zero when it is at position 1. This cycle repeats with rotation of the coil.

In this way, EMF is induced in a DC generator. Though, this induced EMF is alternating in nature, which is then converted in the unidirectional EMF by using a device called commutator.

The direction of induced EMF in the armature conductor of the DC generator is determined by the Fleming’ right hand rule (FRHR) which we discussed in the module-1 (basic concepts) of this tutorial.

Back EMF in DC Motor

In a DC motor, when the armature rotates under the influence of the driving torque, the armature conductors move through the magnetic field, and therefore an EMF is induced in them by the generator action. This induced EMF in the armature conductors acts in opposite direction to the appped voltage $mathit{V_{s}}$ and is known as the back EMF or counter EMF.

The magnitude of the back EMF is given by,

$$mathrm{mathit{E_{b}}:=:frac{mathit{NPphi Z}}{mathrm{60}mathit{A}}:cdot cdot cdot (1)}$$

The back EMF $mathit{E_{b}}$ is always less than the appped voltage $mathit{V_{s}}$. However, this difference is small when the DC motor is running under normal conditions.

In DC motors, the back EMF $mathit{E_{b}}$ induced in the armature opposes the appped voltage, thus the appped voltage has to overcome this EMF $mathit{E_{b}}$ to force a current $mathit{I_{a}}$ in the armature circuit for motor action. The required power to overcome this opposition is given by,

$$mathrm{mathit{P_{m}}:=:mathit{E_{b}I_{a}}:cdot cdot cdot (2)}$$

The power $mathit{P_{m}}$ is one which actually converted into mechanical power. For this reason, the power $mathit{P_{m}}$ is also called as electrical equivalent of mechanical power developed.

Consider a shunt DC motor whose electrical equivalent circuit is shown in Figure-1.

Back EMF

When a DC voltage $mathit{V_{s}}$ is appped across terminals of the motor, the field electromagnets are excited and armature conductors are suppped with current. Hence, a driving torque acts on the armature which begins to rotate. When the armature rotates, a back EMF is induced in the armature conductors that opposes the appped voltage $mathit{V_{s}}$. This appped voltage has to force a current through the armature conductors against the back EMF.

The voltage equation of the dc motor can be expressed as,

$$mathrm{mathit{V_{s}:=:E_{b}+I_{a}R_{a}}:cdot cdot cdot (3)}$$

Where,$mathit{R_{a}}$ is the resistance of the armature circuit.

Then, the armature current of the DC motor is given by,

$$mathrm{mathit{I_{a}}:=:frac{mathit{V_{s}-E_{b}}}{mathit{R_{a}}}:cdot cdot cdot (4)}$$

Since the appped voltage $mathit{V_{s}}$ and armature resistance $mathit{R_{a}}$ are usually fixed for a given motor, then the value of $mathit{E_{b}}$ will determine the current drawn by the DC motor. If the speed of the DC motor is high, then the value of back EMF is large and hence the motor will draw less armature current and vice-versa.

Significance of Back EMF in DC Motor

The back EMF in a DC motor makes it a self-regulating machine, which means it makes the motor to draw a sufficient amount of armature current to develop the torque required by the mechanical load.

Now, from Equation-4, we may explain the importance of back EMF in the DC motor as −

Case 1 − Motor running on no load

In this case, the dc motor requires a small torque to overcome the frictional and windage losses. Thus, the armature current $mathit{I_{a}}$ drawn by the motor is small and the back EMF is nearly equal to the supply voltage.

Case 2 − Motor load is changed suddenly

In this case, when load is suddenly attached to the motor shaft, the armature slows down. Consequently, the speed at which the armature conductors move through the magnetic field is decreased and hence the back EMF decreases. This decreased back EMF allows a larger current to pass through the armature conductors, and larger armature current means high driving torque. Hence, it is clear that the driving torque increases as the motor speed decreases. The reduction in motor speed stops when the armature current is sufficient to produce the increased torque required by the mechanical load.

Consider another situation, where the load on the motor is decreased. In this case, the driving torque is momentarily more than the requirement so that the armature is accelerated. The increase in the armature speed increases the back EMF, and causes the armature current to decrease. Once the armature current is just sufficient to produce the reduced driving torque required by the load, the motor will stop accelerating.

This discussion clears that the back EMF in a dc motor automatically regulates the flow of armature current to meet the load requirements.

Types of DC Motors

In practical DC motors, the magnetic field is produced by electromagnets rather than permanent magnets. DC motors are then classified based on the connection of field winding in the motor circuit. On this basis, DC motors are classified into the following two types −

    Separately Excited DC Motors

    Self-Excited DC Motors

Separately Excited DC Motor

A DC motor whose magnetic field winding is excited from an independent source of DC electric supply pke a battery is called a separately excited DC motor. Figure-1 shows the connection diagram of a separately excited DC motor.

S DC

The speed of a separately excited DC motor depends upon the supply voltage and field current, i.e. magnetic flux in the machine. However, the separately excited DC motors are rarely used in practical apppcations because these require an external source of DC power for field excitation.

Self-Excited DC Motors

The type of DC motor whose magnetic field winding is excited from the same power supply from which the armature is suppped, is known as a self-excited DC motor.

Depending upon the manner in which the field winding is connected with the armature winding, self-excited DC motors are classified in the following three types −

    Series DC motor

    Shunt DC motor

    Compound DC motor

Series DC Motor

A DC motor whose field winding is connected in series with the armature winding so that whole armature current passes through the field winding is called a series DC motor. Figure-2 shows the connection diagram of a series DC motor.

DC Series

In case of a series DC motor, the field winding carries the whole armature current, thus it is made up of thick wire with less number of turns so that it possesses minimum resistance.

The following are some important expressions for the series DC motor −

$$mathrm{mathrm{Armature:current},mathit{I_{a}}:=:mathit{I_{se}}:=:mathit{I_{s}}}$$

Where, $mathit{I_{se}}$ is the series field current and $mathit{I_{s}}$ is the supply current.

$$mathrm{mathrm{Supply:voltage},mathit{V_{s}}:=:mathit{E_{b}+I_{a}left ( mathit{R_{a}+R_{se}} ight )}}$$

Where, $mathit{E_{b}}$ is the back EMF, $mathit{R_{a}}$ is the armature circuit resistance, $mathit{R_{se}}$ is the series field resistance.

Shunt DC Motor

A DC motor whose field winding is connected in parallel with the armature winding so that total supply voltage is appped across it, is known as a shunt DC motor. Figure-3 shows the connection diagram of a shunt DC motor.

DC Shunt

In a shunt DC motor, the shunt field winding has a large number of turns of thin wire so that it has high resistance, and therefore only a part of supply current flows through it and the rest flows through the armature winding.

Following are the important expressions of a shunt DC motor −

$$mathrm{mathrm{Armature:current,}mathit{I_{a}}:=:mathit{I_{s}-I_{sh}}}$$

$$mathrm{mathrm{Shunt:field:current,}mathit{I_{sh}}:=:mathit{frac{V_{s}}{R_{sh}}}}$$

$$mathrm{mathrm{Supply:Voltage,}mathit{V_{s}}:=:mathit{E_{b}+I_{a}R_{a}}}$$

Compound DC Motor

A compound DC motor is one which has two sets of field windings on each magnetic pole – one is in series and the other is in parallel with the armature winding.

Compound DC motors are sub-spanided into the following two types −

    Short-shunt compound DC motor

    Long-shunt compound DC motor

A short-shunt compound DC motor is one in which only shunt field winding is in parallel with the armature winding as shown in Figure-4.

short ShuntDC

A long-shunt compound DC motor is one in which shunt field winding is in parallel with both series field winding and armature winding as shown in Figure-5.

Long ShuntDC

The following are the important expressions for compound DC motors −

For short-shunt motor,

$$mathrm{mathrm{Armature:current,}mathit{I_{a}}:=:mathit{I_{s}-I_{sh}}}$$

$$mathrm{mathrm{Series:field:current,}mathit{I_{se}}:=:mathit{I_{a}}}$$

$$mathrm{mathrm{Shunt:field:current,}mathit{I_{sh}}:=:frac{mathit{V_{s}}-mathit{I_{se}R_{se}}}{R_{sh}}}$$

$$mathrm{mathrm{Supply:voltage},mathit{V_{s}}:=:mathit{E_{b}+I_{a}R_{a}+I_{se}R_{se}}}$$

For long-shunt motor,

$$mathrm{mathrm{Armature:current,}mathit{I_{a}}:=:mathit{I_{s}-I_{sh}}}$$

$$mathrm{mathrm{Series:field:current,}mathit{I_{se}}:=:mathit{I_{s}}}$$

$$mathrm{mathrm{Shunt:field:current,}mathit{I_{sh}}:=:frac{mathit{V_{s}}}{R_{sh}}}$$

$$mathrm{mathrm{Supply:voltage},mathit{V_{s}}:=:mathit{E_{b}+I_{a}left ( R_{a}+R_{se} ight )}}$$

Losses in DC Machines

In DC machines (generator or motor), the losses may be classified into three categories namely,

    Copper losses

    Iron or core losses

    Mechanical losses

All these losses appear as heat and hence raise the temperature of the machine. They also reduce the efficiency of the machine.

Copper Losses

In dc machines, the losses that occur due to resistance of the various windings of the machine are called copper losses. The copper losses are also known as I2R losses because these losses occur due to current flowing through the resistance of the windings.

The major copper losses that occur in dc machines are as,

$$mathrm{mathrm{Armature:copper:loss}:=:mathit{I_{a}^{mathrm{2}}R_{a}}}$$

$$mathrm{mathrm{Series:field:copper:loss}:=:mathit{I_{se}^{mathrm{2}}R_{se}}}$$

$$mathrm{mathrm{Shunt:field:copper:loss}:=:mathit{I_{sh}^{mathrm{2}}R_{sh}}}$$

In dc machines, there is also a brush contact loss due to brush contact resistance. In practical calculation, this loss is generally included in armature copper loss.

Iron Losses

The iron losses occur in core of the armature of a DC machine due to rotation of the armature in the magnetic field. Because these losses occur in core of the armature, these are also called core losses.

There are two types iron or core losses namely hysteresis loss and eddy current loss.

Hysteresis Loss

The core loss that occurs in core of the armature of a dc machine due to magnetic field reversal in the armature core when it passes under the successive magnetic poles of different polarity is called hysteresis loss. The hysteresis loss is given by the following empirical formula,

$$mathrm{mathrm{Hysteresis:loss,}mathit{P_{h}}:=:mathit{k_{h}B_{max}^{mathrm{1.6}}fV}}$$

Where, $mathit{k_{h}}$ is the Steinmetz’s hysteresis coefficient, $mathit{B_{max}}$ the maximum flux density,f is the frequency of magnetic reversal, and V is the volume of armature core.

The hysteresis loss in dc machines can be reduced by making the armature core of such materials that have a low value of Steinmetz’s hysteresis coefficient pke sipcon steel.

Eddy Current Loss

When the armature of a DC machine rotates in the magnetic field of the poles, an EMF is induced in core of the armature which circulates eddy currents in it. The power loss due to these eddy currents is known as eddy current loss. The eddy current loss is given by,

$$mathrm{mathrm{Eddy:current:loss,}mathit{P_{e}}:=:mathit{k_{e}B_{max}^{mathrm{2}}f^{mathrm{2}}t^{mathrm{2}}V}}$$

Where,$mathit{K_{e}}$ is a constant of proportionapty, and tis the thickness of lamination.

From the expression for eddy current loss it is clear that the eddy current loss depends upon the square of thickness of lamination. Therefore, to reduce this loss, the armature core is built up of thin laminations that are insulated from each other by a thin layer of varnish.

Mechanical Losses

The power losses due to friction and windage in a dc machine are known as mechanical losses. In a dc machine, the friction loss occurs in form of bearing friction, brush friction, etc. while the windage loss occurs due to air friction of rotating armature.

The mechanical losses depend upon the speed of the machine. But these losses are practically constant for a given speed.

Note− Iron or core losses and mechanical losses together are known as stray losses.

Constant and Variable Losses

In DC machines, we may group the above discussed losses in the following two categories −

    Constant Losses

    Variable Losses

Those losses in a DC machine that remain constant at all loads are called constant losses. These losses include − iron losses, shunt field copper loss, and mechanical losses.

Those losses in a DC machine that vary with load are known as variable losses. The variable losses in a DC machine are − armature copper loss and series field copper loss.


Total losses in a DC machine = Constant losses + Variable losses

Apppcations of DC Machines

At present, a large amount of electrical energy is generated in the form of alternating current. Consequently, the use of DC machines (motors or generators) has become pmited. However, dc machines are still used in several apppcations pke for supplying excitation systems of alternators, in electrolytic processes, welding processes, etc.

Apppcations of DC Generators

The apppcations of different kinds of DC generators are psted below −

Separately-Excited DC Generator

    Generators are mainly used in laboratories for experiments and testing purposes.

    They are also used as a source of DC power for supplying DC motors.

Series DC Generator

    Series DC generators are used in DC locomotives for regenerative braking for supplying field excitation current.

    Series DC generators are also used as a booster in distribution systems.

    Differentially compounded series generators are used for arc welding.

    Over compounded cumulative series generators are used for pghting and heavy power supppes.

    Flat compounded series generators are used for supplying power to offices, houses, and the other commercial buildings.

Shunt DC Generator

    Shunt DC generators are mainly used for pghting purposes.

    Shunt DC generators are used for charging batteries.

    These generators are also used for supplying field excitation current to alternators.

Apppcations of DC Motors

The apppcations of different types of DC motors are given below −

Series DC Motor

    Series DC motors are used in apppcations where high starting torque is required.

    Series DC motors are used in cranes and hoists.

    Series DC motors are used in electric tractions.

    They are used in air compressors.

    They are also used in vacuum cleaners.

    Series DC motors are also used in sewing machines, etc.

Shunt DC Motor

    Shunt DC motors are used in apppcations that require constant speed.

    Shunt DC motors are used for driving lathe machines.

    These are also used in centrifugal pumps and blowers.

    These are used in fans, conveyors, and spinning machines.

    These DC motors are also used in pfts.

Compound DC Motor

    Compound DC motors are used in those apppcations which require high starting torque and constant speed.

    Used in printing presses.

    They are also used in shears.

    They are used in elevators and pfts.

    Compound DC motors are also used in rolpng mills and heavy planners, etc.

Introduction to Induction Motor

Induction motors are the most widely used electric motors in industrial apppcations. Almost all induction motors run at essentially constant speed from no-load to full-load conditions. The speed of induction motors depends on the supply frequency and hence these motors are not easily adapted to speed control. Induction motors are simple and rugged in construction, less expensive, easy to maintain, and can be designed and produced with characteristics to suit most industrial requirements.

What is an Induction Motor?

An induction motor is an asynchronous AC electric motor which converts alternating current electricity into the mechanical energy. It is called an induction motor because the electric current in the rotor circuit required to produce the deriving torque is obtained through electromagnetic induction from the rotating magnetic field of the stator winding.

These motors are referred to as asynchronous motors because their rotor rotates at a speed less than the synchronous speed of the rotating magnetic field.

Magnetic Field

The induction motor is an electromechanical energy conversion device, i.e. it converts electrical energy into mechanical energy in the form of rotation of shaft. Like any electric motor, an induction motor has two main parts namely stator and rotor.

    The stator carries a set of windings called stator winding. The stator winding may be single-phase winding or three-phase winding.

    The rotor carries a short-circuited winding called rotor winding.

In case an induction motor, only the stator winding is fed from an AC supply, while the rotor winding derives its voltage and power from the stator winding through electromagnetic induction.

Working Principle of Induction Motor

The working of an induction motor is based on the principle of electromagnetic induction. In an induction, there are two windings namely, stator winding and rotor winding. The input AC supply is connected to the stator winding, the current flowing in the stator winding produces a magnetic flux. This magnetic flux is usually rotating, hence also called rotating magnetic field. The rotor winding of the induction motor is a short-circuit winding.

The rotating magnetic flux from the stator cuts the short-circuited conductors of the rotor winding. According to Faraday’s law of electromagnetic induction, an EMF is induced in the rotor circuit which causes a current to flow through it. When the current flows through the rotor winding, another magnetic flux being produced in the machine.

Therefore, there are two magnetic fluxes inside the induction motor, one is stator flux and the other is rotor flux. These two magnetic fluxes interact with each other. Because of that, the rotor will experience a torque which makes the rotor to rotate in the direction of the rotating magnetic field of the stator. In this way, an induction motor runs.

Types of Induction Motors

Depending on the type of input supply, induction motors are classified into the following two types −

    Single-Phase Induction Motors− An induction motor that works on single-phase AC supply is called as a single-phase induction motor.

    Three-Phase Induction Motors− An induction motor which requires three-phase AC supply to operate is called a three-phase induction motor.

Advantages of Induction Motors

The following are some major advantages of induction motors −

    Induction motors have simple and rugged construction.

    Induction motors are relatively less expensive.

    Induction motors have relatively high efficiency.

    Induction motors can be designed to have characteristics to meet the industrial requirements.

    Induction motors need pttle maintenance.

Disadvantages of Induction Motors

The main disadvantages of induction motors are as follows −

    The speed of induction motors cannot be changed easily because they are essentially constant speed motors.

    Induction motors draw a high inrush current at starting.

    Induction motors always operate at lagging power factor.

    Single-phase induction motors are not self-starting; hence we need provide some extra starting mechanism.

Single-Phase Induction Motor

As the name imppes, these induction motors are operated on a single-phase AC supply. Single-phase induction motors are the most famipar electric motors because these are commonly used in domestic and commercial apppances pke fans, pumps, washing machines, air conditioners, refrigerators, etc.

Although single-phase induction motors are relatively less efficient than three-phase induction motors, but they are extensively used as the substitute for three-phase induction motors in low power apppcations.

A typical single-phase induction motor consists of two main parts − a stator and a rotor. The stator of a single-phase induction motor carries a single-phase winding, whereas the rotor has the squirrel-cage construction.

How to Make an Induction Motor Self Start?

The major drawback of a single-phase induction motor is that it is not self-starting, but requires some starting mechanism. In single-phase induction motors, the stator winding produces a pulsating magnetic field which varies in sinusoidal manner. Hence, this magnetic field reverses its polarity after each half-cycle of AC, but does not rotate in space. As a result, this alternating magnetic field does not produce rotation in a stationary rotor. Although, if the rotor is rotated in one direction by some external mean, it will continue to run in the direction of rotation. However, this method of starting a single-phase induction motor is not convenient in practice.

Therefore, in order to make a single-phase induction motor self-starting, we are somehow required to produce a revolving magnetic field inside the motor. This can be achieved by converting a single-phase AC supply into two-phase AC supply by providing an additional winding. Thus, a single-phase induction motor consists of two windings on its stator, namely main winding and starting winding. These windings are 90° out of phase with each other.

Types of Single-Phase Induction Motors

Depending upon the method employed to make the motor self-starting, single-phase induction motors may be classified into the following three types −

    Sppt-phase induction motor

    Capacitor-start induction motor

    Capacitor-start capacitor-run induction motor

Let us now discuss each of these Induction Motors in greater detail.

Sppt-Phase Induction Motor

A sppt-phase induction motor is a type of single-phase induction motor in which the stator consists of two windings namely, a starting winding and a main winding, where the starting winding is displaced by 90° electrical from the main winding.

The starting winding operates only during the starting period of the motor. The starting and main windings are so designed that the starting winding has high resistance and relatively low reactance, while the main winding has relatively low resistance and high reactance so that currents flowing in the two windings have a reasonable phase difference ($alpha$) of about 25° to 30°.

Now, when the starting winding of the motor is connected to a source of single-phase ac supply, the starting winding carries a current $mathit{I_{s}}$, while the main winding carries a current $mathit{I_{m}}$ as shown in Figure-1.

Sppt Phase

As the starting winding is made highly resistive whereas the main winding highly inductive. Consequently, the currents $mathit{I_{s}}$ and $mathit{I_{m}}$ in the two windings have a reasonable phase difference of about 25° to 30°. As a result, a weak revolving magnetic field is produced inside the motor which starts it.

Capacitor Start Induction Motor

The type of single-phase induction motor in which a capacitor C is connected in series with the starting winding as shown in Figure-2. This capacitor is called starting capacitor. The value of starting capacitor is so chosen that the starting current $mathit{I_{s}}$ leads the current $mathit{I_{m}}$ through the main winding by about 80°.

Capacitor

Once the motor attains about 75% of the rated speed, a centrifugal switch isolates the starting winding from the circuit. The motor then operates as a single-phase induction motor and continues to accelerate till it reaches the normal speed. Therefore, in this type of single-phase induction motor, the capacitor in series with the starting winding introduces a phase shift between the two windings so that the motor can start itself.

Capacitor-Start Capacitor Run Induction Motor

This motor is almost identical to a capacitor-start induction motor except that the starting winding is not disconnected from the motor circuit. Therefore, in case of capacitor-start capacitor-run induction motor, both the windings (starting winding & main winding) remain connected to the supply during starting as well as running period.

Run Induction

In this motor, two capacitors C1 and C2 are used in the starting winding as show in Figure-3. The capacitor C1 having small capacitance value is used for optimum running of the motor and hence permanently connected in series with the starting winding, whereas the larger capacitor C2 is connected in parallel with C1 and it remains in the circuit during starting period only. The starting capacitor C2 is isolated from the circuit by a centrifugal switch when the motor reaches about 75% of rated speed. The motor is then runs as a single-phase induction motor.

Apppcations of Single-Phase Induction Motors

Single-phase induction motors are mainly used in domestic and commercial apppances pke fans, ACs, refrigerators, air-cooler, washing machines, etc. Given below are some of the apppcations of different kinds of single-phase induction motors −

    Sppt-Phase Induction Motors − These motors are best suited for moderate starting-torque apppcations pke fans, washing machines, oil burners, small machine tools, etc.

    Capacitor-Start Induction Motors − These motors are suitable for apppcations that require relatively high-starting torque pke compressors, large fans, pumps and high-inertia loads, etc.

    Capacitor-Start Capacitor-Run Induction Motors − These motors are suitable for constant torque, and vibration free apppcations pke in hospital apppances, studio equipment and in many other apppances that are used in such areas where silence is important.

Three-Phase Induction Motor

As the name suggests, a three-phase induction motor is one which works on three-phase AC supply, and converts three-phase AC electricity into mechanical energy. Three-phase induction motors are the most extensively used electric motors in industries. These motors run at almost a constant speed from no-load to full-load, i.e., they have good speed regulation. Although the speed of three-phase induction motors depends on the supply frequency and number of poles in the machine and therefore, it is quite difficult to change their speed.

Just pke any other electric motor, a typical three-phase induction motor also consists of two main parts namely stator and rotor. The stator is a stationary part and carries a three-phase winding, called stator winding. The rotor is a rotating part of the motor and carries a short-circuited winding, called rotor winding.

The stator winding of a three-phase induction motor is fed from a three-phase balanced AC supply, while the rotor winding derives its working voltage and power from the stator winding via electromagnetic induction. This is why, it is named so.

A three-phase induction motor may be considered to be a three-phase transformer with a rotating secondary winding. Therefore, it could be described as a transformer-type AC machine. The only difference is that the induction motor converts electricity into mechanical energy.

Types of Three-Phase Induction Motors

According to the rotor construction, three-phase induction motors are classified into the following two basic types −

    Squirrel-Cage Induction Motor

    Spp-Ring Induction Motor

Advantages of Three-Phase Induction Motors

Here is a pst of some of the major advantages of three-phase induction motors −

    The design and construction of three-phase induction motors are quite simple.

    They have robust construction.

    Three-phase induction motors require less maintenance.

    Three-phase induction motors have self-starting property.

    These motors have reasonably good power factor.

    Three-phase induction motors are more economical.

    They have high efficiency.

Disadvantages of Three-Phase Induction Motors

The major disadvantages of three-phase induction motors are psted below −

    Three-phase induction motors are essentially constant speed motors, and require complex mechanism to change the speed.

    Three-phase induction motors always work on lagging power factor.

    These motors draw very high starting current.

Apppcations of Three-Phase Induction Motors

The major apppcations of three-phase induction motors are given below −

    The squirrel-cage type three-phase induction motors are suitable for driving blowers, fans, machine tools, centrifugal pumps, etc.

    Three-phase induction motors are also used for driving different industrial load pke compressors, crushers, conveyors, reciprocating pumps, etc.

    The spp-ring induction motors are best suited for driving loads that require high starting toque pke crushers, plungers, cranes, elevators, hoists, conveyors, etc.

Construction of Three-Phase Induction Motor

A three-phase induction motor consists of two main parts namely,

    Stator

    Rotor

There is a small air gap between the stator and rotor which ranges from 0.4 mm to 4 mm depending on the power rating of the motor.

Stator

The stator of a three-phase induction motor is a stationary part, and it consists of a cypndrical-shaped frame made up of fabricated steel. This steel frame encloses a hollow cypndrical core made up of thin laminations of sipcon steel. On the inner periphery of the core, a number of evenly spaced slots are provided to place the stator winding. The sipcon-steel laminations are used to reduce the hysteresis and eddy current losses.

Stator

Three windings are placed in the stator slots and are suitably connected to form a balanced three-phase delta or star connected circuit. As per the requirement of motor speed, these three-phase windings are wound for a definite number of poles. Where, greater is the number of poles, lesser is the speed of the induction motor and vice-versa.

When we fed the three-phase stator winding from a balanced three-phase supply, a rotating magnetic field of constant magnitude is produced. This rotating magnetic induces EMF in the rotor circuit by electromagnetic induction.

Rotor

The rotor is a rotating or moving part of the three-phase induction motor. It consists of a rotor core made up of thin laminations of high grade sipcon steel to reduce the hysteresis and eddy-current losses. The rotor core is a hollow cypnder, mounted on a shaft. On outer periphery of the rotor core, slots are provided to place the rotor winding.

Based on the construction, the rotor of a three-phase induction motor can be of the following two types −

    Squirrel-cage rotor

    Wound rotor

Let s discuss these two types of rotors in detail.

Squirrel Cage Rotor

The squirrel-cage rotor consists of a laminated cypndrical core having parallel slots on its outer periphery. In case of squirrel-cage rotor, the rotor winding is made up of metal (copper or aluminium) bars. These metal bars are placed in the rotor slots and are short-circuited at each end by metal rings called end-rings as shown in Figure-2.

Squirrel cage

From Figure-2, it can be observed that the construction of this rotor resembles a squirrel cage and hence the name. Here, it is also to be noted that the rotor is not connected electrically to the supply, but it derives its voltage and power by the electromagnetic induction from the stator.

The three-phase induction motors that employ squirrel-cage rotor are known as squirrel-cage induction motors. Almost 70% to 80% three-induction motors used in industrial apppcations are squirrel-cage induction motors because of their simple and robust construction which enable them to operate in most adverse circumstances. Although, the induction motors that use squirrel-cage rotor have a low starting torque.

Wound Rotor

The wound rotor consists of a laminated cypndrical core made up of sipcon steel. It carries a 3-phase rotor winding similar to the stator winding as shown in Figure-3.

Wound Rotor

The rotor winding of the wound rotor is uniformly distributed in the slots and is connected in star fashion. The open ends of the star-connected rotor winding are brought out and connected to three spp rings mounted in the rotor shaft. A carbon brush is resting on each spp ring, and through these brushes, external resistances can be added to the rotor circuit.

At starting, suitable values of external resistances are added into phases of the rotor winding to obtain a high starting torque. These external resistances are gradually removed from the circuit as the motor runs up to speed. The use of external resistances considerably reduces the starting current and increases the starting torque of the motor. Once the motor attains normal speed, the three carbon brushes are short-circuited so that the wound motor runs pke a squirrel cage induction motor.

Three-Phase Induction Motor on Load

In this chapter, we will explain the behavior of a three-phase induction motor on load.

When we attach a mechanical load to the rotor shaft of the three-phase induction motor, it will begin to slow down and thus the rotating magnetic field (RMF) will cut the rotor conductors at a higher rate. Because of this, the induced EMF and resulting current in the rotor conductors will increase gradually, and producing a higher torque. This torque accelerates the rotor, and the rotor and mechanical load will soon reach a state of equipbrium when the rotor torque and load torque become equal. Once this state is reached, the speed of the motor stops to decrease further, and hence the motor will run at the new speed at a constant rate.

However, the decrease in speed of a three-phase induction motor with increased load is small. It is because, impedance of its rotor circuit is low, and a small drop in the speed produces a large rotor current. This increased rotor current produces a higher torque to meet the increased load demand on the motor shaft. This is why the 3-phase induction motors are considered to be constant speed motors. However, these motors never run at synchronous speed, thus they are also called asynchronous motors.

Technically, the change in load on the three-phase induction motor is met through the adjustment of spp (difference of synchronous speed and rotor speed). Which means, the spp increases spghtly with the increase in load on the motor shaft. Due to this, the relative speed between the rotating magnetic field and rotor conductors is increased. Consequently, the rotor current is increased, producing a higher motor torque to meet the increased load demand.

Also, with increasing mechanical load, the increased rotor current is in such a direction so as to decrease the rotating magnetic flux of the stator (according to Lenz’s law), thus decreasing the back EMF in the stator windings. The decreased back EMF allows the stator current to increase, and hence increasing the power input to the induction motor.

Concept of Spp in Induction Motor

In a three-phase induction motor, the rotor can never reach the speed of stator’s rotating magnetic field (called synchronous speed). If it did, there would be no relative motion between the rotating magnetic field and rotor conductors, no induced EMF in the rotor conductors, and hence no torque to rotate the rotor. Therefore, in practice, the speed of rotor of an induction motor is always less than the synchronous speed. This difference is known as spp speed, i.e.,

$$mathrm{mathrm{Spp:speed}:=:mathit{N_{s}-N_{r}}}$$

Where, $mathit{N_{s}}$ is the synchronous speed and $mathit{N_{r}}$ is the rotor speed.

$$mathrm{mathrm{Synchronous:speed,}mathit{N_{s}}:=:frac{120mathit{f}}{mathit{P}}}$$

Where,f is the supply frequency and P is the number of poles in induction motor.

The ratio of the spp speed to the synchronous speed is called the spp of the induction motor, i.e.,

$$mathrm{mathrm{Spp,}mathit{s}:=:frac{mathit{N_{s}-N_{r}}}{mathit{N_{s}}}}$$

Also,

$$mathrm{mathrm{Percentage:Spp,}mathit{s}:=:frac{mathit{N_{s}-N_{r}}}{mathit{N_{s}}} imes 100\%}$$

In a practical three-phase induction motor, the change in the spp from no-load to full-load is around 0.1% to 3%.

Numerical Example

An 8-pole 3-phase induction motor is connected to a 60 Hz supply. If it is running at 880 RPM. Calculate the spp.

Solution

Given data,

    Poles,P = 8

    Frequency,f = 60 Hz

    Rotor speed,Nr= 880 RPM

$$mathrm{ herefore mathrm{Synchronous:speed,}mathit{N_{s}}:=:frac{120 imes 60}{8}:=:900}$$

Therefore, the spp will be,

$$mathrm{mathrm{Spp,}mathit{s}:=:frac{900-880}{900} imes 100:=:2.22\%}$$

Characteristics of 3-Phase Induction Motor

The operating performance of a three-phase induction motor can be explained with the help of the following two characteristics namely,

    Torque-Spp Characteristics

    Torque-Speed Characteristics

Torque Spp Characteristics of 3 Phase Induction Motor

The torque-spp characteristics of a three-phase induction motor is the curve drawn between the motor torque and spp for a particular value of rotor resistance. Figure-1 shows different torque-spp characteristics of a typical three-phase induction motor for a spp range from s = 0 to s= 1 for various values of rotor resistance.

Torque Spp

For a three-phase induction motor, the relation between the motor torque and spp under running condition is given by,

$$mathrm{mathit{ au _{r}}:=:frac{mathit{KsR_{r}}}{mathit{R_{r}^{mathrm{2}}+s^{mathrm{2}}X_{r}^{mathrm{2}}}}:cdot cdot cdot (1)}$$

Where,K is a constant,s is the spp, $mathit{R_{r}}$ is the per phase rotor resistance, and $mathit{X_{r}}$ is the standstill rotor reactance per phase.

From Equation-1, we may conclude the following points −

Case 1

If s = 0, then $mathit{ au _{r}}:=:0$. Therefore, the torque-spp curve starts from the origin.

Case 2

At normal speed of the motor, the spp is small, and thus $mathit{sX_{r}}$ is practically negpgible as compared to $mathit{R_{r}}$.

$$mathrm{ herefore mathit{ au _{r}}propto mathit{frac{s}{R_{r}}}}$$

Since for a given motor, $mathit{R_{r}}$ is also constant.

$$mathrm{ herefore mathit{ au _{r}}propto mathit{s}}$$

Thus, the torque-spp curve is a straight pne from zero spp to a spp that corresponds to full load.

Case 3

If spp value exceeds the full-load spp, then torque increases and becomes maximum when $mathit{R _{r}}:=:mathit{s:X_{r}}$. This maximum torque in a three-phase induction motor is known as breakdown torque or pull-out torque. The value of the breakdown torque is at least double of the full-load torque when the induction motor is operated at rated voltage and frequency.

Case 4

When the spp value becomes greater than that corresponding to the maximum torque, then the term $mathit{s^{mathrm{2}}:X_{r}^{mathrm{2}}}$ increases rapidly so that $mathit{R_{r}^{mathrm{2}}}$ may be neglected.

$$mathrm{ herefore mathit{ au _{r}}propto mathit{frac{s}{s^{mathrm{2}}X_{r}^{mathrm{2}}}}}$$

As $mathit{X_{r}^{mathrm{2}}}$ is practically constant, then

$$mathrm{mathit{ au _{r}}propto mathit{frac{mathrm{1}}{s}}}$$

Hence, the torque is now inversely proportional to the spp. Thus, the torque-spp curve is a rectangular hyperbola.

Therefore, from the above analysis of torque-spp characteristics of a three-phase induction motor it is clear that the addition of resistance to the rotor circuit does not change the value of maximum torque, but it only changes the value of spp at which the maximum torque occurs.

Torque-Speed Characteristic of 3-Phase Induction Motor

For a three-phase induction motor, the motor torque depends upon the speed but we cannot express the relationship between them by a simple mathematical equation. Therefore, we use a torque-speed characteristic curve to show this relationship. Figure-2 shows a typical torque-speed characteristic curve of a three-phase induction motor.

Torque

The following points may be noted from this characteristic curve −

    If the full-load torque is $ au$, then the starting torque is $1.5 au $ and the maximum torque (or breakdown torque) is $2.5 au $

    At full-load, if speed of the motor is N, and if the mechanical load on the shaft increases, the speed of the motor will drop until the motor torque is again equal to the load torque. Once the two torques are equal, the motor will run at a constant speed but lower than the previous. Although, if the motor torque becomes greater than $2.5 au $(i.e. breakdown torque), the motor will suddenly stop.

    For a three-phase induction motor, the torque-speed curve is essentially a straight pne between the points of no-load and full-load. The slope of the curve pne depends upon the resistance of the rotor circuit, i.e., greater the resistance, the sharper the slope.

Speed Regulation and Speed Control

Speed Regulation of Induction Motors

The speed regulation of induction motor is defined as the change in the motor speed with change in load. It is expressed as a fraction or percentage of full-load speed, i.e.,

$$mathrm{mathrm{Speed:regulation}:=:mathit{frac{N_{nl}-N_{fl}}{N_{fl}}} imes 100\%}$$

Where,$mathit{N_{nl}}$ is the no-load speed of the motor and $mathit{N_{fl}}$ is the full-load speed of the motor.

The speed regulation of an induction motor is about 3% to 5%. Due to this small speed regulation, the induction motors are classified as the constant speed motors.

Speed Control of Three-Phase Induction Motors

The speed of a three-phase induction motor is given by,

$$mathrm{mathit{N_{r}}:=:left ( 1-mathit{s} ight )mathit{N_{s}}:cdot cdot cdot (1)}$$

Where,s is the spp and $mathit{N_{s}}$ is the synchronous speed in RPM.

$$mathrm{mathit{N_{s}}:=:frac{120mathit{f}}{mathit{P}}:cdot cdot cdot (2)}$$

From equations (1) & (2), it is clear that the speed of a three-phase induction motor can be varied by changing the following −

    Frequency (f) of AC supply,

    Number of stator poles (P), and

    Spp (s).

In practice, the change in supply frequency is generally not possible because the commercial electric supppes have a constant frequency. Hence, the speed of a three-phase induction motor can be changed either by changing the number of stator poles (P) or the spp (s). We shall now discuss the speed control of squirrel-cage and spp-ring induction motors.

Speed Control of Squirrel-Cage Induction Motors

The speed control of squirrel-cage induction motors is changed by changing the number of stator poles. By the pole changing method, there are only two or four speeds are possible.

In a two-speed induction motor, one stator winding is provided, which may be switched through a suitable control equipment to provide the two speeds. Where, one speed is half of the other. For example, the stator winding may be connected for either 4 or 8 stator poles, giving synchronous speeds of 1500 RPM and 750 RPM, when the motor is suppped from a source of 50 Hz AC supply.

In a four speed induction motor, two separate stator windings are provided each of which provides two speeds.

Following are the major disadvantages of pole changing method of speed control −

    This method cannot be used to obtain gradual continuous speed control.

    It makes the motor design and switching of the interconnection of stator windings more comppcated.

    This method can provide a maximum of four different speeds for any one motor due to design and interconnection comppcations.

Speed Control of Spp-Ring Induction Motors

The speed of a spp-ring induction motor can be varied by changing the motor spp. The following methods are employed for changing the spp and hence the speed −

    By the changing the stator pne voltage.

    By changing the resistance of the rotor circuit.

    By adding and changing a foreign voltage in the rotor circuit.

Numerical Example

For a three-phase induction motor, the no-load speed of the motor is 900 RPM and its full-load speed is 880 RPM. Find the speed regulation of the motor.

Solution

Given data,

    $mathit{N_{nl}}$ = 900 RPM

    $mathit{N_{fl}}$ = 880 RPM

$$mathrm{ hereforemathrm{Speed:regulation}:=:mathit{frac{N_{nl}-N_{fl}}{N_{fl}}} imes 100\%}$$

$$mathrm{Rightarrow mathrm{Speed:regulation}:=:frac{900-880}{880} imes 100\%:=:2.273\%}$$

Methods of Starting 3-Phase Induction Motors

The following four methods are extensively used for starting the three-phase induction motors −

    Direct-On-Line Starter

    Auto-Transformer Starter

    Star-Delta Starter

    Rotor Resistance Starter

In this chapter, let s discuss each of these starting methods in detail.

Direct On Line Starter

As the name imppes, the direct-on pne (D.O.L.) starter is one in which the three-phase induction motor is started by connecting it directly to a 3-phase balanced ac supply as shown in Figure-1.

Line Starter

In this method, the induction motor draws a very high starting current about 4 to 10 times of the full-load current. It is because, the impedance of the motor at standstill is low. Therefore, the direct-on pne (D.O.L.) method of starting is suitable for the motor of low power rating, usually up to 7.5 kW.

Autotransformer Starter

In this method of induction motor starting, a three-phase autotransformer is used to supply three-phase electricity to the motor. The autotransformer is mainly used to reduce the 35. Methods of Starting 3-Phase Induction Motors supply voltage at starting and then connecting the motor to the full supply voltage as the motor attains a sufficient speed.

The circuit arrangement of autotransformer starter is shown in Figure-2. The tapings on the autotransformer used for starting the induction motors are provided in such a way that when it is connected in the circuit, 60% to 80% of the supply voltage is appped to the motor.

Autotransformer

At the instant of starting, the autotransformer is put into the circuit and hence reduced voltage is appped to the motor. Consequently, the starting current is pmited to a safe value. When the motor reaches about 80% of the rated speed, the autotransformer is removed from the circuit through a changeover switch, and the motor is then connected to the full supply voltage. The autotransformer starter has several advantages pke low power loss, small starting current, etc. Therefore, this method is suitable for relatively larger induction motors of power ratings over 25 hp.

Star-Delta Starter

In this method, the three-phase induction motor is started as a star-connected motor and run as a delta-connected motor.

The induction motors which are started by star-delta starter has the stator windings which are designed for delta operation and are connected in star during the starting period. When the motor attains a sufficient speed, the winding connections are changed from star to delta.

Figure-3 shows the circuit arrangement of the star-delta starter. Here, the six terminals of the stator windings are connected to a changeover switch. At the instant of starting, the changeover switch connects the stator windings in star-configuration. As a result, each stator phase gets a voltage equal to V/√3, where V is the full pne voltage. In this way, the stator windings get a reduced voltage during starting period.

Star Delta

When the motor attains a specific speed, the changeover switch turns the connection of stator windings to delta. Each phase now gets the full pne voltage V, and the motor runs at the normal speed. However, this method of starting of three-phase induction motor causes a large reduction in the starting torque of the motor. This method is best suited for medium sized induction motors, up to about 25 hp.

Rotor Resistance Starter

This method of starting is apppcable to spp-ring induction motors only. In this method, a variable star-connected rheostat is inserted into the rotor circuit through spp rings, and full supply voltage is appped to the stator winding. The circuit arrangement of rotor resistance starter is shown in Figure-4.

Rotor Resistance

At the instant of starting, the handle of the star-connected rheostat is set in the ‘off’ position. Consequently, a maximum resistance is inserted in each phase of the rotor circuit, and reduces the starting current. At the same time, this resistance increases the starting torque.

When the motor picks up speed, the external resistance is gradually removed from the rotor circuit by moving the rheostat handle. Once the motor attained about 80% of the normal speed, the handle is switched to the ‘on’ position, and thus the whole external resistance is removed from the rotor circuit.

Introduction to 3-Phase Synchronous Machines

An electromechanical energy conversion device (or electrical machine) which operates on synchronous speed (i.e. speed of rotating magnetic field) is termed as a synchronous machine. A synchronous machine an AC machine, i.e., it requires AC supply to work.

Based on the energy conversion, synchronous machines may be classified into two types −

    Synchronous Generator

    Synchronous Motor

The synchronous machines are the most extensively used electrical machines in power system apppcations pke power generator, power factor correction, driving constant speed mechanical load, etc.

The synchronous machine which converts mechanical energy into alternating current electricity is called a synchronous generator or alternator. While the synchronous machine which converts alternating current electricity into mechanical energy is called a synchronous motor.

The synchronous machines, used in most practical apppcations, are three-phase AC machines. However, there are single-phase synchronous machines also exist but they are used in special apppcations.

A synchronous machine (generator or motor) always operate at a constant speed called synchronous speed. The synchronous speed is given by the following relation,

$$mathrm{mathit{N_{s}}:=:frac{120mathit{f}}{mathit{p}}cdot cdot cdot (1)}$$

Where,

    f is the supply frequency,

    P is the number of poles in the machine.

The synchronous speed is measured in revolution per minute (RPM).

For satisfactory operation, a synchronous machine always maintains the expression given in Equation-1. If the synchronous machine fails to maintain the above relationship of Equation-1. The machine will stop to operated, and this condition is known as loss of synchronism or out of synchronism of the machine. Hence, this proves that the synchronous machine is designed to operate at a constant speed.

Working Principle of Synchronous Machine

The working principle of a synchronous machine is based on the law of electromagnetic interaction and law of magnetic interlocking.

According to the law of electromagnetic interaction, when there is a relative motion between a conductor and a magnetic field, an EMF is induced in the conductor. On the other hand, when a current carrying conductor is placed in a magnetic field, a force acts on the conductor that tends to move it.

According to the law of magnetic interlocking, two different magnetic fields (field of stator and field of rotor) are locked together and rotate at the same speed. This phenomenon is called magnetic interlocking.

These two principles explain the working of a synchronous machine. The synchronous machine is first started by the electromagnetic interaction, and then the magnetic fields of rotor and stator are locked together to rotate at the synchronous speed.

Three-Phase Synchronous Generator

A synchronous machine that converts mechanical energy into 3-phase electrical energy through the process of electromagnetic induction is known as a 3-phase synchronous generator or alternator.

A 3-phase alternator consists of an armature winding and a field winding, where the EMF is induced in the armature winding, while field winding produces the working magnetic field. In case of a 3-phase alternator, the armature winding is provided on the stator part of the machine while the field winding is provided on the rotor. The major advantage of stationary armature winding is that there is no need of commutator as required in the DC generators.

The 3-phase synchronous generators are most widely used for generation of electric power in power generating plants.

Three-Phase Synchronous Motor

A synchronous machine that converts three-phase electricity into mechanical energy is known as three-phase synchronous motor.

Like any other electric motor, a synchronous motor also consists of two major parts namely stator and rotor. The stator carries a three-phase armature winding, whereas the rotor carries a field winding which is excited from a dc supply to produce a certain number of fixed magnetic poles.

A unique feature of a synchronous motor is that it can run at a constant speed, called synchronous speed. Although, the major disadvantage of a three-phase synchronous motor is that it does not have self-starting torque. Therefore, in order to start a 3-phase synchronous motor, it is brought up almost to its synchronous speed by some auxipary mean.

Being a constant speed motor, the load on the motor does not exceed the pmiting value. If the load on the motor exceeds the pmiting value, the motor will immediately stop. The three-phase synchronous motors are used for − driving mechanical loads at constant speed, improving power factor of a system, etc.

Features of Synchronous Machines

The following are the key features of synchronous machines (motor or generator) −

    Synchronous motors do not self-starting torque.

    Synchronous machine is a doubly-excited machine because it requires two input supppes – one on the stator and the other on the rotor.

    Synchronous machines operate at constant speed, called synchronous speed.

    Synchronous generators can produce a voltage of constant magnitude and frequency.

    A synchronous machine can be operated at lagging, leading or unity power factor just by changing the excitation.

    Synchronous motors have relatively high starting torque as compared to induction motors.

    Synchronous motors are suitable for driving constant and slow speed (usually less than 300 RPM) loads.

    Synchronous machines are expensive.

Construction of Synchronous Machine

Like any other rotating electrical machine, a synchronous machine (generator or motor) has two essential parts namely,

    Stator − It is a stationary part of the machine and carries the armature winding.

    Rotor − It is the rotating part of the machine. The rotor of a synchronous machine produces the main field flux.

In this chapter, let s discuss how the Stator and Rotor of a Synchronous Machine is constructed.

Stator Construction

The stator of a synchronous machine includes various parts pke frame, stator core, stator windings and coopng mechanisms, etc. The frame is the outer part of the machine, and made up of cast iron for small-sized machines, and of welded steel for large-sized machines. The frame encloses the whole machine assembly and protects it from mechanical and environmental impacts.

Stator Construction

The stator core is a hollow cypnder which is made up of high-grade sipcon steel laminations. The sipcon steel laminations reduce the hysteresis and eddy-current losses in the machine. A number of evenly spaced slots are provided on the inner periphery of the stator core. A three-phase winding is put in these slots. When current flows through the stator winding, it produces a sinusoidal magnetic field and hence the EMF.

Rotor Construction

In synchronous machines, there are two types of rotor constructions used namely, sapent-pole rotor and cypndrical rotor.

Sapent-Pole Rotor

The term sapent means projecting. Hence, a sapent-pole rotor is one that consists of field poles projecting out from the surface of the rotor core as shown in Figure-2.

Sapent Pole

Since the rotor is subjected to a changing magnetic field, therefore it is made up of thin steel lamination to reduce the eddy current loss. The field poles of same dimensions are constructed by stacking laminations of the required length and then riveted together. After wounding the field coils around each pole core, poles are fitted to a steel spider keyed to the rotor shaft.

At the outer end of each pole, damper bars are provided to dame out the oscillations of rotor during sudden changes in the load. Though, the synchronous machines using the sapent-pole rotor have a non-uniform air gap, where the air gap is minimum under the pole centers and it is maximum in between the field poles. The pole face (outer end of the pole) is so shaped that length of the radial air-gap increases from the pole center to the pole tip so it can result a sinusoidal distribution of flux in the air-gap. This will ensure the smooth operation of synchronous machine.

In the sapent-pole rotor, the inspanidual field coils are connected in series so that they can give alternate north and south poles. The ends of the field coils are connected to a source of DC supply though brushes and spp-rings.

The synchronous machines having sapent-pole rotor usually have a large number of field poles, and operate at lower speeds. These machines have a larger diameter and a shorter axial-length.

Cypndrical Rotor

This type of synchronous machine rotor construction has a smooth cypndrical structure. In case of cypndrical rotor, there are no physical poles projecting outward. The cypndrical rotor is made from spd forgings of high-grade Ni-Cr-Mo steel.

On the outer periphery of the rotor, evenly spaced slots are cut in about two-third part of the rotor and theses slots are parallel to the rotor shaft. The field windings are placed in these slots. The field windings are excited from a source of DC supply. The un-slotted part of the rotor forms pole-faces.

Cypndrical Rotor

The synchronous machines that use cypndrical rotor have a smaller diameter and longer axial length. The cypndrical rotor construction pmits the effect of centrifugal forces. Consequently, the cypndrical rotor construction is mainly used in high-speed synchronous machines. Also, this rotor construction provides a greater mechanical strength and permits relatively more accurate dynamic balancing to the machine.

The major advantage of having a synchronous machine using cypndrical rotor is that it makes less mechanical losses. Since the cypndrical rotor provides a uniform air-gap in the machine, hence their operation is less noisy.

Working of 3-Phase Alternator

A 3-phase alternator is a synchronous machine that converts mechanical energy into 3-phase electrical energy through the process of electromagnetic induction.

As we discussed in previous chapters, a 3-phase alternator, also called a 3-phase synchronous generator, has a stationary armature and a rotating magnetic field. In the three-phase alternator, the rotor winding (serves as field winding) is energized from a DC supply and alternate north and south poles are developed on the rotor.

Operation of Three-Phase Alternator

When the rotor is rotated (say in anticlockwise direction) by a prime mover (engine, turbine, etc.), the stator winding (serves as armature winding) is cut by the magnetic flux of the rotor poles. Due to electromagnetic induction, an EMF is induced in the armature winding. This induced EMF is alternating one because the north and south poles of the rotor alternately pass the armature winding conductors. We can determine the direction of the induced EMF by Fleming’s right hand rule.

The electrical equivalent circuit of a star-connected armature winding and dc field winding three-phase alternator is shown in Figure-1.

Phasor Diagram

When the rotor is rotated a three-phase voltage is generated in the armature winding. The magnitude of generated voltage depends upon the speed of the rotation of rotor and the DC excitation current. However, the magnitude of generated voltage in each phase of the armature is the same, but displaced by 120° electrical from each other in space as shown in the phasor diagram.

Frequency of Generated Voltage

In a three-phase alternator, the frequency of generated voltage depends upon the speed of rotation and the number of field poles in machine.

Let

    N = speed of rotation in RPM

    P = number of field poles

Then, the frequency of generated voltage is given by,

$$mathrm{mathit{f}:=:frac{mathit{NP}}{120}:mathrm{Hz}:cdot cdot cdot (1)}$$

It should be noted that N is the synchronous speed because the alternator is a synchronous machine whose rotor always rotates at the synchronous speed.

EMF Equation of Three-Phase Alternator

The mathematical relation which gives the value of EMF induced in the armature winding of a three-phase alternator is termed as its EMF equation.

Let

    N = speed of rotation in RPM

    P = number of field poles on rotor

    $phi$ = flux per pole in weber

    Z = number of armature conductors per phase

Then, in one revolution, each stator conductor is cut by a flux of $mathit{Pphi }$ Weber, i.e.,

$$mathrm{mathit{dphi }:=:mathit{Pphi }}$$

Also, time taken to complete one revolution is,

$$mathrm{mathit{dt }:=:frac{60}{mathit{N}}}$$

Therefore, the average EMF induced in each armature conductor is,

$$mathrm{mathrm{EMF :per:conductor}:=:mathit{frac{dphi }{dt}}:=:frac{mathit{Pphi }}{(60/mathit{N})}:=:frac{mathit{Pphi N}}{mathrm{60}}}$$

Since Z is the total number of conductors in the armature winding per phase, then

$$mathrm{mathrm{Avg.:EMF:per:phase, }mathit{E_{av}/mathrm{phase}}:=:mathit{Z imes }frac{mathit{Pphi N}}{mathrm{60}}}$$

$$mathrm{ecause mathit{N}:=:frac{120mathit{f}}{mathit{P}}}$$

Then,

$$mathrm{mathit{E_{av}/}mathrm{phase}:=:frac{mathit{Pphi Z}}{60} imes frac{120mathit{f}}{mathit{P}}:=:2mathit{fphi Z}:mathrm{Volts}}$$

Now, the RMS value of generated EMF per phase is given by,

$$mathrm{mathit{E_{mathrm{RMS}}/}mathrm{phase}:=:left ( mathit{E_{av}/mathrm{phase}} ight ) imes mathrm{form:factor}}$$

In practice, we consider that a three-phase alternator generates a sinusoidal voltage, whose form factor is 1.11.

$$mathrm{mathit{E_{mathrm{RMS}}/}mathrm{phase}:=:2mathit{fphi Z} imes 1.11}$$

$$mathrm{ herefore mathit{E_{mathrm{RMS}}/}mathrm{phase}:=:2.22mathit{fphi Z}:mathrm{volts}:cdot cdot cdot (2)}$$

Sometimes, number of turns (T) per phase rather than number of conductors per phase are specified. In that case, we have,

$$mathrm{mathit{Z}:=:2mathit{T}}$$

$$mathrm{ herefore mathit{E_{mathrm{RMS}}/}mathrm{phase}:=:mathit{E_{ph}}:=:4.44mathit{fphi Z}:mathrm{volts}:cdot cdot cdot (3)}$$

The expressions in equations (2) & (3) are known as EMF equation of three-phase alternator.

Numerical Example (1)

What is the frequency of the voltage generated by a three-phase alternator having 6 poles and rotating at 1200 RPM?

Solution

Given data,

    P = 6;

    N = 1200 RPM

$$mathrm{mathrm{Frequency,}mathit{f}:=:frac{mathit{NP}}{120}:=:frac{1200 imes 6}{120}}$$

$$mathrm{ hereforemathit{f} :=:60:Hz}$$

Numerical Example (2)

The armature of a 4-pole, 3-phase, 50 Hz alternator has 24 slots and 10 conductors per slot. A flux of 0.03 Wb is entering the armature from one pole. Calculate the induced EMF per phase.

Solution

$$mathrm{mathrm{Total:number:of:conductors}:=:24 imes 10:=:240}$$

$$mathrm{mathrm{Number:of:conductors:per:phase,}mathit{Z}:=:frac{240}{3}:=:80}$$

$$mathrm{ herefore mathit{E_{ph}}:=:2.22mathit{fphi Z}:=:2.22 imes 50 imes 0.03 imes 80}$$

$$mathrm{mathit{E_{ph}}:=:266.4:V}$$

Armature Reaction in Synchronous Machines

Armature Reaction in an Alternator

When a three-phase alternator is operating at no-load, there will be no current flowing through its armature winding. Hence, the magnetic flux produced in the air-gap will be due to rotor field poles only. But, when the alternator is loaded, the three-phase currents flowing through the armature winding will produce a rotating magnetic field in the air-gap. As a result, the resultant magnetic flux in the air-gap is changed. This effect is known as armature reaction, and may be defined as under −

The current flowing through the armature winding of a three-phase alternator, the resulting magnetomotive force (MMF) produces a magnetic flux. This armature flux interacts with the main pole flux, and causing the resultant magnetic flux to become either less or more than the original main pole flux. This effect of armature flux on the main pole flux is called armature reaction.

In a three-phase alternator, the effect of armature reaction depends upon the magnitude of the armature current and power factor of the load. Which means the power factor of the load determines whether the armature reaction flux distorts, opposes or assists the main field flux.

The following discussion explains the nature of armature reaction in synchronous machines for different power factors −

    Unity Power Factor − When the alternator supppes a load at unity power factor, i.e. purely resistive load, the effect of armature reaction is to distort the main field flux. This is called cross-magnetizing effect of armature reaction.

    Lagging Power Factor − When the alternator supppes a load at lagging power factor, i.e. purely inductive load, the effect of armature reaction is partly demagnetizing and partly cross-magnetizing. This causes a reduction in generated voltage.

    Leading Power Factor − When the alternator supppes a load at leading power factor, i.e. purely capacitive load, the effect of the armature reaction is partly magnetizing and partly cross-magnetizing. This causes an increase in generated voltage.

Armature Reaction in a Synchronous Motor

When the synchronous machine is operated in motoring mode, the armature reaction flux is in phase opposition, which means the nature of armature reaction is reversed what is stated for the alternator.

The following points explain the effects of armature reaction when the synchronous machine is operating in motoring mode −

    Lagging Power Factor − When the synchronous motor draws a current at a lagging power factor, the effect of armature reaction is partly magnetizing and partly cross-magnetizing.

    Leading Power Factor − When the synchronous motor draws a current at a leading power factor, the effect of armature reaction is partly demagnetizing and partly cross-magnetizing.

Output Power of 3-Phase Alternator

Consider a three-phase alternator with a cypndrical rotor and is operating at a lagging power factor.

Let,

    E = per phase induced EMF

    V = per phase terminal voltage

    Ia = per phase armature current

    cos$phi$ = power factor (lagging) of load

    $delta$ = power angle (angle between E and V)

Therefore, the output power of a three-phase alternator is given by,

$$mathrm{mathit{P_{0}}:=:3mathit{VI_{a}cosphi }cdot cdot cdot (1)}$$

Approximate Output Power of 3-Phase Alternator

In a three-phase alternator, the resistance $R_{a}$ of the armature circuit is very small as compared to the synchronous reactance $X_{s}$ of the machine. Thus, we can neglect the armature resistance ($R_{a}$), after that we get approximate equivalent circuit of the alternator as shown in Figure-1. The phasor diagram of the circuit is also shown in Figure-1.

Phasor

From the phasor diagram, we get,

$$mathrm{mathit{AB}:=:mathit{I_{a}X_{s}cosphi }:=:mathit{E}:mathrm{sindelta }}$$

$$mathrm{Rightarrow mathit{I_{a}cosphi }:=:frac{mathit{E:mathrm{sindelta }}}{mathit{X_{s}}}cdot cdot cdot (2)}$$

Now, from equation (1) & (2), we get,

$$mathrm{mathit{P_{0}}:=:frac{3mathit{EV:mathrm{sindelta }}}{mathit{X_{s}}}cdot cdot cdot (3)}$$

The expression in Equation-3 gives the approximate output power of a three-phase alternator.

When the alternator is operating at a constant speed with a constant field current, then Xs and E both are constant and therefore the terminal voltage V is also constant. Thus, from Equation-3, we can observe,

$$mathrm{mathit{P_{0}}propto :mathrm{sindelta }}$$

We know, when $delta$ = 90°, then

$$mathrm{mathrm{sin:90^{circ}}:=:1}$$

Thus, the alternator supppes maximum power at $$ =90°, and it is given by,

$$mathrm{mathit{P_{max}}:=:frac{3mathit{EV}}{mathit{X_{s}}}}cdot cdot cdot (4)$$

The maximum power given by Equation-4 is called the static stabipty pmit of the alternator.

Numerical Example

A 3-phase, 11 kV, 3 MVA star-connected alternator has a per phase synchronous reactance of 10 $Omega$. Its excitation is such that the generated pne EMF is 15 kV. When the alternator is connected to infinite busbars. Calculate the maximum output power of the alternator at the given excitation when armature resistance is neglected.

Solution

Given data,

$$mathrm{mathrm{Line:voltage,}mathit{V_{L}}:=:11:kV:=:11000:V}$$

$$mathrm{ herefore:mathrm{Terminal:voltage:per:phase,}mathit{V}:=:frac{11000}{sqrt{3}}:=:6350.85:V}$$

$$mathrm{mathrm{Generated:pne:EMF}:=:15:kV:=:15000:V}$$

$$mathrm{ herefore:mathrm{Generated:EMF:per:phase,}mathit{E}:=:frac{15000}{sqrt{3}}:=:8660.25:V}$$

$$mathrm{mathrm{Synchronous: reactance: per: phase,}:mathit{X_{s}}:=:10:Omega }$$

Therefore, the maximum power output of the alternator will be,

$$mathrm{mathit{P_{max}}:=:frac{3mathit{EV}}{mathit{X_{s}}}:=:frac{3 imes 8660.25 imes 6350.85}{10}}$$

$$mathrm{ herefore mathit{P_{max}}:=:16499 imes 10^{3}W:=:16499:mathrm{kW}}$$

Losses and Efficiency of 3-Phase Alternator

Losses in Three-Phase Alternator

The losses that occur in a three-phase alternator may be spanided into the following four categories −

    Copper losses

    Iron or core losses

    Mechanical losses

    Stray load losses

Read through this section to find out more about the types of losses that occur in a three-phase alternator.

Copper Losses

The copper losses occur in the armature winding and rotor winding of the alternator due to their resistance when currents flowing through them. Thus, these losses are also called I2R losses.

Iron or Core Losses

The iron or core losses occur in iron parts pke stator core and rotor core of the alternator. These losses consist of hysteresis loss and eddy current loss. The core losses occur because various iron parts of the alternator are subjected to the changing magnetic field.

Mechanical Losses

The mechanical losses occur in the moving or rotating parts pke rotor, shaft, bearings, etc. of the alternator. There are two main types of mechanical losses namely, frictional losses and windage losses. The frictional losses are due to friction of bearings in the alternator, while the windage losses are due to friction between the rotating parts of the alternator and the air inside the casing of the alternator.

Stray Load Losses

This category includes those losses in the alternator which cannot be easily determined. These losses are also called miscellaneous losses. The stray load losses may be because of the following reasons −

    Distortion of main field flux due to armature reaction.

    Non-uniform distribution of current over the area of cross-section of armature conductors.

In practical calculations, we take the stray load losses 1% of the full-load losses.

Note

    The iron losses and mechanical losses together are called rotational losses because these losses occur in the alternator due to rotation of the rotor.

    All these losses that occur in an alternator are converted into heat and result in the increase of the temperature and decrease in the efficiency of the alternator.

Efficiency of Three-Phase Alternator

The ratio of output power to input power of an alternator is called efficiency of the alternator. The efficiency is usually expressed in percentage.

$mathrm{mathrm{Efficiency,} : eta :=:frac{Output:Power}{Input:Power} imes 100\%:=:frac{Output:Power}{Output:Power+Losses} imes 100\%}$

Now, we will derive the expression for efficiency of a three-phase alternator. For that consider a three-phase alternator operating at a lagging power factor.

Let,

    V= terminal voltage per phase

    Ia = armature current per phase

    cos $phi$ = load power factor (lagging)

Thus, the output power of a three-phase alternator is given by,

$$mathrm{mathit{P_{0}}:=:3:mathit{VI_{a}cos:phi }}$$

The losses in the alternator are,

$$mathrm{mathrm{Armature: copper: loss,}mathit{P_{cu}}:=:3:mathit{I_{mathit{a}}^{mathrm{2}}R_{a}}}$$

$$mathrm{mathrm{Field :winding: copper: loss}:=:mathit{V_{f}I_{f}}}$$

Where,Vf is the DC voltage across field winding and If is the DC field current.

$$mathrm{mathrm{Rotational: losses,}mathit{P_{r}}:=:mathrm{Core:losses:+:Mechanical:losses}}$$

$$mathrm{mathrm{Stray:load:losses}mathit{P_{s}}}$$

$$mathrm{ herefore mathrm{Total:losses:in:alternator,}mathit{P_{loss}}:=:3:mathit{I_{a}^{2}R_{a}:+:P_{r}:+:P_{s}:+:V_{f}I_{f}}}$$

Since, the speed of rotation of the rotor is constant so the rotational losses are constant. The field winding copper losses are also constant. If we assume stray-load losses to be constant. Then, we have,

$$mathrm{mathrm{Total:constant:losses,}mathit{P_{c}}:=:mathit{P_{r}:+:P_{s}:+:V_{f}I_{f}}}$$

$$mathrm{ herefore:mathrm{Variable:losses} :=:mathrm{3}mathit{I_{a}^{mathrm{2}}R_{a}}}$$

Hence, the efficiency of the alternator is given by,

$$mathrm{eta :=:frac{mathit{P_{0}}}{mathit{P_{0}+mathrm{Losses}}}:=:frac{3mathit{VI_{a}cosphi }}{3mathit{VI_{a}cosphi :+:mathrm{3}mathit{I_{a}^{mathrm{2}}R_{a}}:+P_{c}}}cdot cdot cdot (1)}$$

Equation-1 can be used to determine the efficiency of a three-phase alternator.

Condition for Maximum Efficiency

The efficiency of an alternator will be maximum when the variable losses are equal to the constant losses, i.e.,

$$mathrm{mathit{P_{c}}:=:3:mathit{I_{a}^{mathrm{2}}R_{a}}cdot cdot cdot (2)}$$

In practice, the maximum efficiency of an alternator usually occurs at about 85% of the full rated load.

Numerical Example

A three-phase alternator has a per phase terminal voltage of 230 V, and the per phase armature current of 14.4 A. The resistance of the armature circuit of the alternator is 0.5Ω, and the constant losses are 200 watts. Calculate the efficiency and maximum efficiency of the alternator if it is supppng a load at 0.8 lagging power factor.

Solution

$$mathrm{mathrm{Efficiency,}eta :=:frac{3mathit{VI_{a}cosphi }}{3mathit{VI_{a}cosphi :+:mathrm{3}mathit{I_{a}^{mathrm{2}}R_{a}}:+P_{c}}}}$$

$$mathrm{Rightarrow:eta :=:frac{3 imes 230 imes 14.4 imes 0.8}{left ( 3 imes 230 imes 14.4 imes 0.8 ight ):+:left ( 3 imes 14.4^{2} imes 0.5 ight ):+:200}}$$

$$mathrm{ herefore eta :=:0.9395:=:93.95\%}$$

For maximum efficiency of the alternator,

$$mathrm{mathit{P_{c}}:=:3:mathit{I_{a}^{mathrm{2}}R_{a}}}$$

$$mathrm{ herefore eta_{max} :=:frac{3mathit{VI_{a}cosphi }}{3mathit{VI_{a}cosphi :+:mathrm{2}mathit{P_{c}}}}:=:frac{3 imes 230 imes 14.4 imes 0.8}{left ( 3 imes 230 imes 14.4 imes 0.8 ight ):+:left (2 imes 200 ight )}}$$

$$mathrm{ herefore eta_{max} :=:0.9521:=:95.21\%}$$

Working of 3-Phase Synchronous Motor

A three-phase synchronous machine which converts three-phase electrical energy into mechanical energy is called a three-phase synchronous motor.

A three-phase synchronous motor is a constant speed machine, and it runs at the synchronous speed. The synchronous speed of a three-phase synchronous motor is given by,

$$mathrm{mathit{N_{s}}:=:frac{120mathit{f}}{mathit{p}}cdot cdot cdot (1)}$$

Where,f is the supply frequency andP is the number of field poles in the motor.

Like any other electric motor, a 3-phase synchronous motor also consists of two main parts namely stator and rotor. The stator houses a 3-phase armature winding and receives power from a 3-phase ac supply source. The rotor is a rotating part and carries field winding which is excited from an external source of DC power.

The most important drawback of a synchronous motor is that it is not self-starting and therefore an auxipary mean has to be used for starting it.

Working of 3-Phase Synchronous Motor

Consider a three-phase synchronous motor having a sapent-pole type rotor of two poles namely $mathit{N_{mathrm{2}}}$ and $mathit{S_{mathrm{2}}}$. Thus, the stator will also be wound for two poles which are $mathit{N_{mathrm{1}}}$ and $mathit{S_{mathrm{1}}}$. A direct voltage is appped to the rotor winding and a balanced three-phase ac voltage to the stator winding.

The stator winding produces a rotating magnetic field which revolves around the stator at a speed called synchronous speed ($mathit{N_{mathit{s}}}$).The direct current flowing through the rotor winding produces two field poles in the rotor and the magnetic field due to these poles is stationary so long as the rotor is not running. Hence, in this case we have a pair of revolving armature poles $left ( mathit{N_{mathrm{1}}}-mathit{S_{mathrm{1}}} ight )$ and a pair of stationary rotor poles $left ( mathit{N_{mathrm{2}}}-mathit{S_{mathrm{2}}} ight )$.

3Phase Supply

Now, consider an instant at which the stator poles are at positions A and B as shown in Figure-1. It is clear that poles $mathit{N_{mathrm{1}}}$ and $mathit{N_{mathrm{2}}}$ repel each other and so do the poles $mathit{S_{mathrm{1}}}$ and $mathit{S_{mathrm{1}}}$. Thus, the rotor tends to rotate in the anticlockwise direction. After a period of half-cycle of AC supply, the polarities of stator poles are reversed, but the polarities of the rotor poles remain the same as shown in Figure-2. In this situation, poles $mathit{S_{mathrm{1}}}$ and $mathit{N_{mathrm{2}}}$ attract each other and so do the poles $mathit{N_{mathrm{1}}}$ and $mathit{S_{mathrm{2}}}$. Thus, the rotor now tends to rotate in the clockwise direction.

Since, the stator poles are changing their polarities rapidly, they tend to pull the rotor first in one direction and after half-cycle of ac in the other direction. Because of the bidirectional torque on the rotor and high inertia of the rotor, the synchronous motor fails to start. Therefore, a synchronous motor has no self-starting torque.

Making a Synchronous Motor Self-Starting

A synchronous motor cannot start by itself. To make the motor self-starting, a squirrel-cage winding, called damper winding, is provided on the rotor. The damper winding consists of copper bars embedded in the slots cut on in the pole faces of the sapent poles of the rotor, as shown in Figure-3.

Self Starting

These damper windings serve to start the synchronous motor by itself, which is explained below −

    Initially, a 3-phase supply is fed to the stator winding while the rotor winding is left open. The rotating magnetic field of the stator winding induces currents in the damper windings, and due to electromagnetic forces, the rotor starts moving. Thus, the synchronous motor is started as an induction motor.

    Once the motor attains a speed nearly equal to the synchronous speed, the rotor winding is excited from a source of dc supply. Now, the resulting poles on the rotor face the stators pole of opposite polarity, and a strong magnetic attraction is set up between them. Thus, the rotor poles are locked with the rotating poles of the stator. Consequently, the rotor revolves at the same speed of the stator poles, i.e. synchronous speed.

    Since the rotor is now rotating at the same speed as the stator field, the damper bars do not cut any flux, hence have no induced currents in them. Thus, the damper windings of the rotor are, in effect, removed from the operation of the motor.

    In this way, a synchronous motor is made self-starting. It must be noted that due to magnetic interlocking between the stator and rotor poles, the synchronous motor can only run at synchronous speed.

Equivalent Circuit and Power Factor of Synchronous Motor

Equivalent Circuit of Synchronous Motor

A synchronous motor is a doubly excited system which means it is connected to two electrical systems, where a three-phase ac supply is connected to the armature winding and a DC supply to the rotor winding. Figure-1 shows the per phase equivalent circuit of a three-phase synchronous motor.

Synchronous Motor

Here,V is the voltage per phase appped to the motor, Rais the armature resistance per phase, and $X_{s}$ is the synchronous reactance per phase. These two parameters (i.e. $R_{a}$ and $X_{s}$) give the synchronous impedance per phase ($Z_{s}$) of the motor.

From the equivalent circuit of the synchronous motor as shown in Figure-1, we can write its voltage equation as,

$$mathrm{mathit{V}:=:mathit{E_{b}+I_{a}Z_{s}}}$$

$$mathrm{Rightarrow mathit{V}:=:mathit{E_{b}+I_{a}left ( R_{a} +jX_{s} ight )}}$$

Where, the bold letters represent the phasor quantities.

Therefore, the armature current per phase is given by

$$mathrm{I_{a}:=:frac{mathit{V-E_{b}}}{mathit{Z_{s}}}:=:frac{mathit{V-E_{b}}}{left ( mathit{R_{a}+jX_{s}} ight )}:=:frac{mathit{E_{r}}}{mathit{R_{a}+jX_{s}}}}$$

Where,$mathit{E_{r}}$ is the resultant voltage in the armature circuit.

The armature current and synchronous impedance of a synchronous motor are the phasor quantities having magnitude and phase angle. Thus, the magnitude of the armature current is given by,

$$mathrm{left|I_{a} ight|:=:frac{mathit{V-E_{b}}}{mathit{Z_{s}}}:=:frac{mathit{E_{r}}}{mathit{Z_{s}}}}$$

And, the magnitude of the synchronous impedance is given by,

$$mathrm{left|Z_{s} ight|:=:sqrt{mathit{R_{a}^{mathrm{2}}+X_{s}^{mathrm{2}}}}}$$

The equivalent circuit and the above equations helps a lot in understanding the operation of a synchronous motor as,

    When the field excitation is such that $mathit{E_{b}=V}$, then the synchronous motor is said to be normally excited.

    When the field excitation is such that $mathit{E_{b}<V}$, then the synchronous motor is said to be under excited.

    When the field excitation is such that $mathit{E_{b}> V}$, then the synchronous motor is said to be over excited.

As we shall see in the next section that the excitation of the synchronous motor affects its power factor.

Power Factor of Synchronous Motor

One of the most important characteristics of a synchronous motor is that it can be made to operate at leading, lagging or unity power factor by changing the field excitation. The following discussion explains how the change in field excitation affects the power factor of a synchronous motor −

    When the rotor excitation current is such that it produces all the required magnetic flux, then there is no need of extra reactive power in the machine. Consequently, the motor will operate at unity power factor.

    When the rotor excitation current is less than that required, i.e., the motor is under-excited. In this case, the motor will draw reactive power from the supply to provide the remaining flux. Thus, the motor will operate at a lagging power factor.

    When the rotor excitation current is more than that required, i.e. the motor is over-excited. In this case, the motor will supply reactive power to the 3-phase pne, and behaves as a source of reactive power. Consequently, the motor will operate at a leading power factor.

Hence, we may conclude that a synchronous motor absorbs reactive power when it is under-excited and depvers reactive power when it is over-excited.

Power Developed by Synchronous Motor

In this chapter, we will derive the expression for mechanical power developed (Pm) by a three-phase synchronous motor. Here, we will neglect the armature resistance Ra of the synchronous motor. Then, the armature copper loss will be zero and hence the mechanical power developed by the motor is equal to the input power (Pin) to the motor, i.e.,

$$mathrm{mathit{P_{m}}:=:mathit{P_{in}}}$$

Now, consider an under-excited (i.e.,Eb<V) three-phase synchronous motor having zero armature resistance (i.e.,Ra = 0), and is driving a mechanical load.

Mechanicalpower

The phasor diagram of one phase of this synchronous motor is shown in the figure. Because the motor is under-excited, thus it will operate at a lagging power factor, say (cos $phi$). From the phasor diagram, it is clear that $mathit{E_{r}}:=:I_{a}X_{s}$ and the armature current per phase $I_{a}$ lags the resultant EMF $mathit{E_{r}}$ by an angle of 90°.

Therefore, the input power per phase to the motor is given by,

$$mathrm{mathit{P_{in}}:=mathit{VI_{a}}:cos:phi :cdot cdot cdot (1)}$$

Since $mathit{P_{m}}$ is equal to $mathit{P_{in}}$, therefore,

$$mathrm{mathit{P_{m}}:=mathit{VI_{a}}:cos:phi :cdot cdot cdot (2)}$$

From the phasor diagram, we have,

$$mathrm{mathit{AB}:=mathit{I_{a}X_{s}}:cos:phi :=:mathit{E}_{mathit{b}}:sin:delta}$$

$$mathrm{ herefore mathit{I_{a}:cosphi :=:frac{E_{b}:sindelta }{mathit{X_{s}}}}:cdot cdot cdot (3)}$$

Using equations (2) & (3), we obtain,

$$mathit{P_{m}:=:frac{mathit{VE_{b}}sindelta }{X_{s}}}cdot cdot cdot (4)$$

This is the expression for mechanical power developed (Pm) per phase by the synchronous motor.

For 3-phases of the motor, the developed mechanical power is given by,

$$mathit{P_{m}:=:frac{3mathit{VE_{b}}sindelta }{X_{s}}}cdot cdot cdot (5)$$

Also, from the equations (4) & (5), it is clear that the mechanical power developed will be maximum when power angle ($delta$= 90°) electrical. Therefore,

For per phase,

$$mathit{P_{max}:=:frac{mathit{VE_{b}}}{X_{s}}}cdot cdot cdot (6)$$

For 3-phase,

$$mathit{P_{max}:=:frac{mathit{3VE_{b}}}{X_{s}}}cdot cdot cdot (7)$$

Important Points

The following important points may be noted about the mechanical power developed by a three-phase synchronous motor −

    The mechanical power developed by the synchronous motor increases with the increase in power angle ($delta$) and vice-versa.

    If power angle ($delta$) is zero, then the synchronous motor cannot develop mechanical power.

    When the field excitation of the synchronous motor is reduced to zero, i.e., ($E_{b}$ = 0), the mechanical power developed by the motor is also zero, i.e. the motor will come to a stop.

Numerical Example

A 3-phase, 4000 kW, 3.3 kV, 200 RPM, 50 Hz synchronous motor has per phase synchronous reactance of 1.5 $Omega$. At full-load, the power angle is 22° electrical. If the generated back EMF per phase is 1.7 kV, calculate the mechanical power developed. What will be the maximum mechanical power developed?

Solution

Given data,

    Voltage per phase, $mathit{V}:=:frac{3.3}{sqrt{3}}:=:1.9:kV$

    Back EMF per phase,$mathit{E_{b}}:=:1.7:kV$

    Synchronous reactance,$X_{s}:=:1.5Omega $

    Power angle,$delta :=:22^{^{circ}}$

Therefore, the mechanical power developed by the motor is,

$$mathrm{mathit{P_{m}}:=:frac{3:mathit{VE_{b}:sindelta} }{mathit{X_{s}}}:=:frac{3 imes 1.9 imes 1.7 imes mathrm{sin}:22^{circ}}{1.5}}$$

$$mathit{ herefore P_{m}}:=:2.42 imes 10^{6}:W:=:2.42:MW$$

The mechanical power developed will be maximum when ($delta$ =90°),

$$mathit{P_{max}}:=:frac{3mathit{VE_{b}}}{X_{s}}:=:frac{3 imes 1.9 imes 1.7}{1.5}$$

$$mathit{ herefore P_{max}}:=:6.46:mathrm{MW}$$

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