By the end of this chapter you'll be able to…

  • 1Find transformer losses, regulation and maximum efficiency
  • 2Apply DC machine EMF and torque equations and choose a speed-control method
  • 3Split induction motor power by slip and read the torque-slip curve
  • 4Use the power-angle relation and describe over-excited synchronous motor operation
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Why this chapter matters in UPSC ESE (IES)
Electrical machines questions follow stable patterns. Efficiency conditions, the slip power split and the power-angle relation each solve a recurring family of problems.

Electrical Machines: Transformers, DC, Induction and Synchronous — ESE Electrical

Weightage: Electrical machines are the single largest block of the Electrical papers. The topics repeat predictably: transformer efficiency and regulation, DC motor speed control, induction motor power stages and torque-slip, and synchronous machine power angle.

1. The transformer

A transformer changes voltage and current by electromagnetic induction. The EMF equation is:

and the turns ratio gives . The core flux depends on , so a transformer must not be run at lower frequency with the same voltage, since the flux would rise and the core saturate.

Tests. The open-circuit test (rated voltage on the LV side, HV open) gives the iron loss and the magnetising branch. The short-circuit test (reduced voltage, rated current) gives the copper loss at full load and the equivalent impedance. Core loss is constant with load, while copper loss varies as the square of the load.

Regulation is the fall in secondary voltage from no load to full load, as a fraction of the no-load voltage. Approximately:

with plus for a lagging power factor and minus for leading. Regulation can be zero or negative with a leading load.

Maximum efficiency occurs when the variable (copper) loss equals the constant (iron) loss. The load fraction at which this occurs is .

Worked example. A 100 kVA transformer has iron loss 1 kW and full-load copper loss 2 kW. Then , which is 70.7 kVA. At 0.8 power factor the output is 56.6 kW and total loss is kW, so .

An autotransformer shares one winding, so for a ratio close to 1 it saves copper and is more efficient, but offers no isolation. Three-phase connections (star-delta, delta-star) are named by vector group, such as Dyn11. Parallel operation needs the same voltage ratio, polarity, phase sequence, phase angle shift and a matching per-unit impedance.

2. DC machines

The induced EMF in a DC machine is , where is the number of poles, the conductors, the parallel paths ( for lap and for wave windings). The torque is .

For a motor, and the speed is:

MotorCharacteristicUse
ShuntNearly constant speedLathes, fans
SeriesHigh starting torque; speed rises sharply as load falls; never started without loadTraction, cranes
CompoundBetween the twoPresses, shears

Speed control: (a) armature voltage control below base speed (constant torque), (b) field flux control above base speed (constant power) and (c) the Ward-Leonard scheme for smooth wide-range control. A starter limits the large starting current, since at start.

If the field of a running shunt motor opens, the flux falls to its residual value and the speed rises dangerously, so protection is needed. A Swinburne test finds no-load losses and so efficiency, without loading the machine, but cannot be used for series motors.

3. The induction motor

The stator field rotates at the synchronous speed . The rotor runs slower, and the slip is . Rotor current frequency is .

Worked example. A 4-pole, 50 Hz motor has rpm. At 1440 rpm, , and the rotor frequency is Hz.

Power flow from the air gap is the rotor input , divided as:

So with kW at , rotor copper loss is 0.4 kW and mechanical power developed is 9.6 kW. This also shows that an induction motor at high slip is inefficient.

Torque-slip curve. The torque is proportional to the square of the supply voltage. The maximum torque occurs at , and its value is independent of rotor resistance, so adding rotor resistance moves the peak toward higher slip and raises starting torque. At starting () torque is low in a squirrel-cage motor.

Starting:

MethodEffect
Direct on lineFull starting current of 5 to 7 times full load
Star-deltaCurrent and torque fall to one-third
AutotransformerCurrent and torque reduced by for tapping
Rotor resistance (slip-ring)Lower current with higher starting torque

Speed control: vary the supply frequency (V/f control keeping flux constant), the number of poles, the rotor resistance (slip-ring) or the voltage. A single-phase induction motor has no self-starting torque and needs a split-phase, capacitor or shaded-pole arrangement. An induction machine run above synchronous speed acts as a generator.

4. The synchronous machine

An alternator generates EMF at frequency . The EMF per phase is , with the winding factor.

The synchronous impedance method gives the regulation from the open-circuit and short-circuit tests. For a lagging load the regulation is positive and large, and for a leading load it can be negative (the Ferranti-like rise in voltage).

The power developed in a cylindrical-rotor machine is:

where is the load angle. Maximum power is at , and the stability limit is reached there. For a salient-pole machine an extra reluctance term appears in .

Worked example. With pu, pu, pu and , pu.

A synchronous motor is not self-starting and needs damper windings or a pony motor. Its speed is exactly synchronous. V-curves plot armature current against field current. An over-excited motor takes a leading current and so can correct the system power factor, acting as a synchronous condenser. Hunting is a periodic oscillation of the rotor about its mean position, reduced by damper windings.

Parallel operation of alternators needs the same voltage, frequency, phase sequence and phase. After synchronising, changing the prime mover input changes the real-power share, and changing the excitation changes the reactive share.

Common traps

  • Thinking iron loss changes with load. It is constant; copper loss varies with the square.
  • Assuming rotor resistance changes the maximum torque. It moves the slip at which it occurs.
  • Forgetting that a series motor must not run unloaded.
  • Treating torque as proportional to in an induction motor. It goes as .
  • Ignoring leading power factor in regulation. The sign changes.

Memory aids

  • "1, s, 1 minus s": air-gap power split in an induction motor.
  • "Equal losses for best efficiency": transformer.
  • "EV over X sine delta": power angle.

Summary

The transformer is analysed through its EMF equation, equivalent circuit, tests and efficiency condition. DC machines are governed by and torque proportional to flux and armature current, with speed controlled by voltage and flux.

The induction motor splits air-gap power by slip, has maximum torque independent of rotor resistance, and starts by reduced voltage. The synchronous machine delivers power by , can correct power factor and needs a starting aid as a motor.

Exam protocol

  • Check which losses vary with load before using efficiency formulas.
  • Draw the equivalent circuit before applying a test result.
  • Use the split for all induction power questions.
  • State whether a synchronous machine is over- or under-excited.

Key formulas & results

Everything to memorise for the exam hall, in one card. Screenshot this for revision.

Transformer EMF
Flux depends on V over f.
Maximum efficiency load fraction
Copper loss equals iron loss at this load.
Induction motor slip
Rotor frequency is s times f.
Air-gap power split
Mechanical power is (1 - s) times air-gap power.
Synchronous power angle
Maximum at 90 degrees for a cylindrical rotor.
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Traps UPSC ESE (IES) sets — and how to dodge them

These are the exact option-traps and misreads that cost marks under negative marking.

WATCH OUT
✗ Letting iron loss vary with load.
✓ Iron loss is constant; copper loss varies as the square of load.
WATCH OUT
✗ Thinking rotor resistance changes the maximum torque.
✓ It changes the slip at maximum torque, not its value.
WATCH OUT
✗ Starting a series motor unloaded.
✓ Speed rises dangerously at light load.
WATCH OUT
✗ Taking induction motor torque as proportional to voltage.
✓ It varies as the square of voltage.
WATCH OUT
✗ Ignoring the sign of power factor in regulation.
✓ Leading loads reduce or reverse the regulation.

Exam-pattern practice

PYQ-style questions with full solutions. Work through them as a readiness check — mark yourself honestly and get your gap report at the end.

Readiness check

Are you exam-ready for Electrical Machines: Transformers, DC, Induction and Synchronous?

8 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

8 questions~6 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • •E = 4.44 f N Phi; flux depends on V over f.
  • •OC test gives iron loss; SC test gives copper loss and impedance.
  • •Maximum efficiency when copper loss equals iron loss.
  • •DC motor speed proportional to Eb over flux; series motor never unloaded.
  • •Induction power split: 1 : s : (1 - s).
  • •Torque proportional to V squared; maximum torque independent of R2.
  • •Synchronous P = EV sin delta over Xs; over-excited is leading.

UPSC ESE (IES) question blueprint

How this topic is asked, tier by tier — so you can prep to the pattern.

Typical weightage: 50

Question styleMarks eachTypical countWhat it tests
Slip~2-4 marks in a typical paper
Starting~2-4 marks in a typical paper
Transformer efficiency~4-6 marks in a typical paper
Power stages~4-6 marks in a typical paper
Power angle~4-6 marks in a typical paper
DC motor~6-8 marks in a typical paper
Torque-slip~6-8 marks in a typical paper
Synchronous motor~2-4 marks in a typical paper
Prep strategy
  • Separate constant and variable losses
  • Slip power split
  • State the excitation

Exam-hall strategy

Battle-tested tips from mentors and toppers for this topic under the sectional clock.

  1. Separate constant and variable losses first.
  2. Use the slip power split for every induction question.
  3. State the sign of excitation and power factor.

Beyond the exam

Where this skill shows up in the job you're competing for — and in life.

Industrial drives

Induction motors with V over f drives power most industrial machinery.

Power system support

Synchronous machines supply real power and reactive support to the grid.

Where else this topic is tested

Prepare once, score in every exam that asks it.

ESE Electrical Prelims Paper IIElectrical machines
ESE Electrical Mains Paper IElectrical machines

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

The OC test gives the magnetising branch and iron loss, and the SC test gives the series impedance and full-load copper loss.

Know why they are not self-starting and the common starting methods.
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