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

  • 1Model a line by length and use ABCD parameters
  • 2Convert per-unit quantities between bases and compute fault MVA
  • 3Compute symmetrical and unsymmetrical fault currents from sequence impedances
  • 4Apply equal incremental cost and the equal-area criterion
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Why this chapter matters in UPSC ESE (IES)
Fault current, per-unit conversion and economic dispatch problems follow fixed methods. A candidate who writes the method first can finish them quickly.

Power Systems: Transmission, Faults, Stability and Protection — ESE Electrical

Weightage: Power systems is the second large block of the Electrical papers, after machines. The examiners favour per-unit conversion, fault current calculation, economic dispatch and the equal-area criterion, so a worked method for each repays the time spent.

1. System structure

Electrical energy moves through generation, transmission, sub-transmission and distribution. Power is transmitted at high voltage because for a given power the current falls in proportion to voltage and the loss falls with its square. Indian transmission uses 765, 400, 220 and 132 kV AC, alongside HVDC links.

Load curves describe demand. The load factor is average load over peak load, the demand factor is maximum demand over connected load, and the diversity factor is the sum of individual maximum demands over the system maximum demand. A high load factor lowers the cost per unit.

2. Transmission line parameters

Line inductance per phase for a three-phase line is H/m, where is the geometric mean distance between conductors and for a solid round conductor. Bundled conductors lower inductance and raise capacitance, and reduce corona loss and radio interference.

Line capacitance grows with the conductor spacing reduced and the height above ground. Skin effect pushes AC toward the conductor surface, raising resistance, and proximity effect adds to it.

Transposition equalises the phase inductances and capacitances and reduces interference with nearby telephone lines.

3. Line performance

Model a line by an ABCD two-port: and .

LineLengthModel
ShortUp to about 80 kmSeries impedance only1
MediumAbout 80 to 250 kmNominal- or
LongAbove about 250 kmDistributed parameters

For any reciprocal network, , and for a symmetrical line .

Voltage regulation is . The Ferranti effect is a rise in receiving-end voltage above the sending end on a lightly loaded or open-circuited long line, because of its charging current. The surge impedance is about 400 ohms for overhead lines, and at the surge impedance loading the line neither absorbs nor supplies reactive power.

Insulators. In a suspension string the voltage is not shared equally, with the unit nearest the line taking the most. String efficiency is the voltage across the string over times that across the worst unit. A grading ring improves it.

4. Per-unit system

A quantity in per-unit is the actual value divided by its base. With base MVA and base kV:

To change base:

Worked example. A 30 MVA generator has pu on its own base. On a 100 MVA base, pu. The fault MVA at its terminals is MVA.

Per-unit values of a transformer are the same on both sides, which removes the need to refer quantities across voltage levels.

5. Symmetrical and unsymmetrical faults

A three-phase (symmetrical) fault is analysed with the positive-sequence network alone: .

Unsymmetrical faults use symmetrical components: positive, negative and zero sequence. For a pre-fault voltage :

FaultFault current
Three-phase
Single line to ground
Line to line
Double line to groundSequence networks: in series with

Worked example. With and pu and pu, the three-phase fault current is 5 pu, and the single line-to-ground current is pu. The single-line fault exceeds the three-phase fault whenever .

Zero-sequence current needs a path: it cannot flow through a delta winding from outside, and an ungrounded star blocks it. The neutral grounding method (solid, resistance, reactance, Petersen coil) sets the earth-fault current.

6. Load flow

Load flow solves the steady-state voltages from the network equations. Bus types:

  • Slack bus: voltage magnitude and angle fixed, supplies the losses.
  • PV (generator) bus: real power and voltage magnitude fixed.
  • PQ (load) bus: real and reactive power fixed.

Gauss-Seidel is simple but converges slowly, while Newton-Raphson converges quadratically and needs few iterations whatever the system size. The fast-decoupled method treats - and - as nearly independent. Transmission networks are highly inductive, so real power depends mainly on the angle and reactive power on the voltage magnitude.

7. Economic dispatch

Total generation cost is minimised when all units operate at the same incremental cost , ignoring losses and limits. With losses the penalty factor modifies the condition.

Worked example. Two units have incremental costs and and must supply 100 MW. Setting them equal with : , so MW, MW and per MWh.

Unit commitment decides which units to run, subject to start-up cost and minimum up and down times.

8. Stability

Steady-state stability is the ability to return to a normal operating point after a small disturbance. Transient stability is the ability to remain in synchronism after a large disturbance such as a fault. The swing equation is:

The equal-area criterion says a single machine against an infinite bus remains stable if the accelerating area equals the decelerating area before the angle passes its limit. The critical clearing angle and the critical clearing time are the largest values for which the fault can persist without loss of synchronism. Faster clearing, lower reactance, auto-reclosing and series compensation all improve stability.

9. Protection

Protection isolates a fault quickly and selectively.

  • Relays: over-current (with a time-grading discipline), differential (compares currents in and out, used for transformers, generators and busbars), distance (measures impedance to the fault, typically with zone 1 set at about 80 percent of the line), earth-fault and Buchholz (gas-operated, for transformer internal faults).
  • Circuit breakers: they must interrupt fault current by extinguishing the arc. Types include oil, air-blast, SF6 and vacuum. A breaker rating includes breaking capacity, making capacity and short-time current. The recovery voltage and its rate of rise decide arc re-ignition.
  • Surge protection: the surge arrester diverts lightning overvoltage to earth, and an earth wire shields the line.

A breaker opens a faulty circuit after the relay trips it, and a fuse is a combined sensing and interrupting device for low-power circuits.

Common traps

  • Mixing pu bases when elements are on different ratings.
  • Treating the Ferranti effect as a loaded-line effect. It occurs when lightly loaded.
  • Forgetting that zero-sequence flow needs a ground path.
  • Using Gauss-Seidel iteration counts to compare with Newton-Raphson's.
  • Confusing differential and distance protection.

Memory aids

  • "Slack, PV, PQ": bus types.
  • "Equal lambda": economic dispatch.
  • "Accelerating area equals decelerating area": transient stability.

Summary

Transmission lines are modelled by ABCD parameters according to length, and per-unit analysis removes voltage-level conversions. Faults are analysed by sequence networks and give the currents that relays and breakers must handle.

Load flow, economic dispatch and stability studies keep the system running economically and in step, and protection is the last line of defence.

Exam protocol

  • Convert every quantity to a common per-unit base first.
  • Draw the sequence networks for unsymmetrical faults.
  • Equate incremental costs, then check unit limits.
  • Apply equal area to a single machine on an infinite bus.

Key formulas & results

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

Per-unit impedance
Change base using MVA and kV ratios.
Single line-to-ground fault
Three-phase fault is E over Z1.
Economic dispatch
Ignoring losses and limits.
Swing equation
Basis of transient stability.
Surge impedance
About 400 ohms for overhead lines.
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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
✗ Mixing per-unit bases.
✓ Convert every element to the common base first.
WATCH OUT
✗ Treating the Ferranti effect as a heavy-load effect.
✓ It occurs on a lightly loaded or open long line.
WATCH OUT
✗ Ignoring the ground path for zero-sequence current.
✓ It needs a grounded neutral and cannot pass a delta from outside.
WATCH OUT
✗ Confusing differential and distance relays.
✓ Differential compares currents; distance measures impedance.
WATCH OUT
✗ Assuming Newton-Raphson iterations grow with system size.
✓ It needs few iterations regardless of size.

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 Power Systems: Transmission, Faults, Stability and Protection?

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.

  • •Load factor = average over peak; diversity factor above 1.
  • •Short line A = 1, B = Z; AD - BC = 1.
  • •Ferranti: no-load receiving voltage above sending voltage.
  • •Per-unit base change: multiply by MVA ratio and kV ratio squared.
  • •Three-phase fault E/Z1; SLG 3E/(Z1+Z2+Z0).
  • •Slack, PV, PQ buses; Newton-Raphson converges fastest.
  • •Equal incremental cost; equal-area criterion; zone 1 at about 80 percent.

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
Per-unit~2-4 marks in a typical paper
Buses~2-4 marks in a typical paper
Fault MVA~4-6 marks in a typical paper
Faults~4-6 marks in a typical paper
Dispatch~4-6 marks in a typical paper
Stability~6-8 marks in a typical paper
Protection~6-8 marks in a typical paper
Ferranti~2-4 marks in a typical paper
Prep strategy
  • Per-unit first
  • Sequence networks
  • Equal incremental cost

Exam-hall strategy

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

  1. Convert to per-unit first.
  2. Draw the sequence networks.
  3. Equate incremental costs and then check limits.

Beyond the exam

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

Grid planning and operation

Load flow and dispatch tools run the grid in real time.

Protection design

Fault studies size breakers and set relays so that only the faulty section trips.

Where else this topic is tested

Prepare once, score in every exam that asks it.

ESE Electrical Prelims Paper IIPower systems
ESE Electrical Mains Paper IIPower systems and protection

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Know the short-line and nominal-pi values and the long-line hyperbolic form.

Know the standard levels such as 765, 400, 220 and 132 kV.
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