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c059741
NotesPhysics HLTopic 4.2Magnetic fields and the force between parallel currents
Back to Physics HL Topics
4.2.42 min read

Magnetic fields and the force between parallel currents (Physics HL)

IB Physics • Unit 4

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Contents

  • Magnetic field patterns
  • Force between parallel currents
  • Exam-style question
The big idea: Hold a compass next to a wire and switch on the current — the needle swings. The moving charge has wrapped the wire in a magnetic field: the region around a magnet, or a current, where a magnetic force is felt.

We picture it with field lines — lines closer together mean a stronger field. Because a current makes its own field, two current-carrying wires can push or pull on each other.

A current I sets up a magnetic field. Around a single straight wire the real field lines are CONCENTRIC CIRCLES wrapping around it (curl your right hand round the wire, thumb along I — the fingers give the circle direction). This picture just signals 'a field around a current'.

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Around a straight wire

  • Field lines are concentric circles centred on the wire
  • They get further apart the further from the wire (field gets weaker)
  • Right-hand grip rule: thumb along the current I, fingers curl the way the circles point

Between two bar magnets

  • Field lines run from the N pole to the S pole (outside the magnet)
  • Unlike poles (N–S) facing → lines join up → the magnets attract
  • Like poles (N–N or S–S) facing → lines push apart → the magnets repel
Spot it: Around a wire → circles. Between magnets → lines from N to S.

Unlike poles attract; like poles repel. A current carries a magnetic field with it.

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Each wire sits in the magnetic field made by the other, so each feels a force. The rule for the direction is simple:

Parallel currents (same direction)

  • Currents point the same way (e.g. both up the page)
  • The wires ATTRACT — they are pulled toward each other
  • Memory aid: 'friendly' currents (same way) come together

Anti-parallel currents (opposite directions)

  • Currents point opposite ways (one up, one down the page)
  • The wires REPEL — they are pushed apart
  • Memory aid: 'opposite' currents push off

Parallel currents attract: wire 1 (off to the left) pulls wire 2 toward it. By Newton's third law wire 1 feels an equal force pulling it toward wire 2 — the same force per unit length on each.

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For the size of the force, the data booklet gives the force per unit length (the force on each metre of wire):

Force per unit length between two parallel wires (given in the data booklet). F/L in newtons per metre, currents in amps, separation r in metres.
force per unit length on each wire (N m⁻¹)
permeability of free space (4π × 10⁻⁷ T m A⁻¹)
current in the first wire (A)
current in the second wire (A)
separation between the two wires (m)
How it scales: F/L is proportional to each current and inversely proportional to the separation r.

So doubling one current doubles F/L; doubling the separation halves it.
IB-style questionCalculate[3 marks]

Two long parallel wires are 0.10 m apart. They carry currents of 3.0 A and 4.0 A in the same direction. Find the force per unit length on each wire, and state whether they attract or repel. (Take μ0 = 4π × 10⁻⁷ T m A⁻¹.)

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How this is tested — parallel currents mostly appear as a scaling question:

Paper 1A

  • Given a force per unit length, then one current is doubled/halved and/or the separation changes — find the new F/L and its direction (attract or repel).

Paper 1B / 2

  • Describe or draw the field pattern, or use F/L = μ0 I1 I2 / (2π r) directly.
The classic trap: Forgetting that reversing one current flips attract ↔ repel — and that the force changes by a ratio, so you rarely need μ0 at all.
Scale by ratios: F/L ∝ I1 I2 / r. To get the new force, multiply the old one by each change:

× (factor on I1) × (factor on I2) ÷ (factor on r). The constant μ0 ÷ (2π) cancels.

Anti-parallel currents repel: with wire 1 off to the left, wire 2 is pushed to the right, away from wire 1. Each wire feels an equal and opposite push.

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IB-style questionDetermine[4 marks]

Two parallel wires repel each other with a force per unit length of 6.0 × 10⁻⁵ N m⁻¹. (a) The current in one wire is doubled and the separation is also doubled — find the new force per unit length. (b) Starting from the original repelling wires, the current in one wire is instead reversed — state whether the wires now attract or repel.

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the shape of the magnetic field lines around a long straight current-carrying wire. [1 mark]

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