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

  • 1Use symmetry and Gauss's law, and prefer potentials for superposition
  • 2Apply the method of images and capacitor energy
  • 3Reduce circuits by symmetry and use time constants
  • 4Solve motional emf and induction problems with energy checks
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Why this chapter matters in INPhO (Physics Olympiad)
Electromagnetism olympiad problems reward symmetry and energy arguments over long algebra. Images, capacitor energy loss, circuit symmetry and motional emf are recurring ideas.

Electricity and Magnetism for the Physics Olympiad — NSEP and INPhO

Weightage: Electromagnetism is the second large area in NSEP and INPhO. The questions favour symmetry arguments, energy methods and clever circuit reduction over long algebra. Confirm the current syllabus and pattern with HBCSE.

1. Electrostatics from symmetry

Coulomb's law gives , and the potential of a point charge is . Superposition adds fields as vectors and potentials as scalars, so potentials are usually easier.

Gauss's law: . It is useful only when symmetry fixes the field's direction and magnitude on a surface.

SourceField
Infinite line, charge per length
Infinite plane, charge per area on each side
Uniform sphere of radius , outside
Uniform sphere, inside
Conductor surface

Inside a conductor in equilibrium, , the potential is constant, and any charge sits on the surface. A dipole of moment has an on-axis field , falling as .

The method of images. A point charge at distance from a grounded infinite conducting plane produces the same field in front of the plane as the charge together with an image at distance behind it. The force on the charge is , and the induced charge on the plane totals .

2. Capacitors and energy

A capacitor stores . For a parallel plate, , and a dielectric of constant multiplies it by . In parallel, , and in series .

The stored energy is , with energy density .

Worked example. Two identical capacitors, one charged to and one uncharged, are connected in parallel. The charge is shared equally, so each has . The initial energy is and the final energy is . Half of the energy is lost, as heat and radiation in the wire, whatever its resistance.

When a dielectric slab is inserted with the battery connected, is fixed, rises and charge flows in. With the battery disconnected, is fixed, falls and the slab is drawn in.

3. Circuits

Reduce circuits by symmetry. Points at the same potential by symmetry can be joined without changing the currents, and a branch carrying no current can be removed. For a cube of resistors per edge, the resistance between opposite corners is , and between adjacent corners .

For an RC circuit charging through , , with time constant . For an RL circuit, with . Kirchhoff's laws and the maximum power transfer at complete the toolkit.

4. Magnetic fields and forces

A charge in a field feels , which does no work. For the path is a circle of radius and period , independent of speed. If has a component along , the path is a helix.

Fields to know:

  • Long straight wire: .
  • Centre of a circular loop: .
  • Long solenoid: inside, and zero outside.

Ampere's law: . The force on a current element is , and two parallel wires with currents in the same direction attract.

The magnetic moment of a loop is , and the torque in a field is .

5. Electromagnetic induction

Faraday's law: , and Lenz's law gives the sign: the induced current opposes the change in flux.

Motional emf in a rod of length moving at perpendicular to is . A rod of length rotating about one end at angular speed in a perpendicular field has .

Worked example. A rod of length m rotates at rad/s in a field of T. Then V.

When a rod slides on rails and is pulled at constant speed , the power spent against the magnetic force equals the electrical power , which shows energy conservation.

Self-inductance gives and stored energy . For a solenoid, .

6. Alternating current

For a series circuit with , and driven at , the impedance is . Resonance occurs at , with the quality factor . Average power is . A transformer changes the voltage in the ratio of turns and conserves power in the ideal case.

7. Method

Look for symmetry first, then an energy or conservation argument, then algebra. For fields, ask whether Gauss or Ampere applies. For circuits, ask whether symmetry or a time constant gives the answer without solving equations. Check limits, such as or .

Common traps

  • Using Gauss's law without enough symmetry.
  • Thinking a magnetic force changes kinetic energy. It does not.
  • Forgetting the minus sign in Lenz's law.
  • Missing the energy lost when charged capacitors are connected.
  • Using the sheet field at a conductor surface, where the field is .

Memory aids

  • "Potentials add as scalars": superposition.
  • "Image is minus q behind the plane": conducting plane.
  • "Half of the energy is lost": connecting equal capacitors with one charged.

Summary

Electrostatic problems are solved by symmetry, Gauss's law and potentials, with images for conductors. Capacitors store energy, and connecting charged capacitors loses energy.

Circuits yield to symmetry and time constants. Magnetic forces do no work, and induction problems follow Faraday and Lenz, with energy conservation as the check.

Exam protocol

  • Look for symmetry before computing.
  • Prefer potentials to fields when adding contributions.
  • Check energy conservation in induction problems.
  • Confirm the syllabus and pattern with HBCSE.

Key formulas & results

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

Gauss's law
Use only with sufficient symmetry.
Capacitor energy
Energy density is half epsilon0 E squared.
Cyclotron radius
Period is independent of speed.
Rotating rod emf
Rod rotating about one end.
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Traps INPhO (Physics Olympiad) sets — and how to dodge them

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

WATCH OUT
✗ Using Gauss's law without enough symmetry.
✓ Check that the field is uniform in magnitude and direction over the surface.
WATCH OUT
✗ Thinking a magnetic force changes kinetic energy.
✓ It is perpendicular to velocity and does no work.
WATCH OUT
✗ Dropping the sign in Lenz's law.
✓ The induced current opposes the change in flux.
WATCH OUT
✗ Forgetting energy loss when a charged capacitor joins an uncharged one.
✓ Half of the energy is lost for equal capacitors.
WATCH OUT
✗ Mixing the field of a conductor surface with that of a sheet.
✓ Conductor: sigma over epsilon0; sheet: sigma over 2 epsilon0.

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 Electricity and Magnetism for the Physics Olympiad?

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.

  • •Potentials add as scalars; use symmetry and Gauss's law.
  • •Conductor field sigma over epsilon0; sheet sigma over 2 epsilon0.
  • •Image charge is opposite and equidistant behind a grounded plane.
  • •Capacitor energy half CV squared; equal capacitors lose half the energy when joined.
  • •Cube of resistors: 5R/6 opposite corners, 7R/12 adjacent corners.
  • •Magnetic force does no work; cyclotron radius mv over qB.
  • •Motional emf Blv; rotating rod half B omega l squared; check energy.

INPhO (Physics Olympiad) question blueprint

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

Typical weightage: 40

Question styleMarks eachTypical countWhat it tests
Induction~2-4 marks in a typical paper
Cyclotron~2-4 marks in a typical paper
Capacitors~4-6 marks in a typical paper
Images~4-6 marks in a typical paper
Circuits~4-6 marks in a typical paper
Energy check~6-8 marks in a typical paper
Gauss~6-8 marks in a typical paper
Solenoid~2-4 marks in a typical paper
Prep strategy
  • Symmetry first
  • Potentials over fields
  • Energy check

Exam-hall strategy

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

  1. Symmetry first.
  2. Prefer potentials to fields.
  3. Check energy conservation.

Beyond the exam

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

Electronics and power

Capacitors, inductors and transformers rely on the energy and induction ideas here.

Particle accelerators and sensors

Cyclotron motion and magnetic forces underlie mass spectrometers and accelerators.

Where else this topic is tested

Prepare once, score in every exam that asks it.

NSEPElectricity and magnetism
INPhOMulti-step electromagnetism problems

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Look for symmetry that equalises potentials or removes a branch before writing Kirchhoff equations.

Yes, with resonance, power factor and phasor reasoning, usually as a modest part of the paper.
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