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Intermediate

Electromagnetism and the Motor Effect

4.7.2.1 Electromagnetism·4.7.2.2 Fleming's left-hand rule (HT)

Aligned to the AQA 8463 specification

Level
Intermediate
Reading time
6 min
Published
2 July 2026
On this page
  1. 1.A Current Makes a Magnetic Field
  2. 2.Solenoids
  3. 3.Electromagnets
  4. 4.The Motor Effect (Higher Tier)
  5. 5.Fleming's Left-Hand Rule and F = BIl (Higher Tier)
  6. 6.Common Exam Mistakes

Key takeaways

  • A current flowing through a wire produces a magnetic field in circles around the wire; the field is stronger with a larger current and closer to the wire.
  • A solenoid (a coil of wire) concentrates the field into a strong, uniform field inside, and its external field is the same shape as a bar magnet's.
  • Adding an iron core to a solenoid makes an electromagnet, whose magnetism can be switched on and off with the current.
  • (Higher Tier) The motor effect: a current-carrying wire placed in a magnetic field feels a force; the force is largest when the wire is at right angles to the field.
  • (Higher Tier) Fleming's left-hand rule gives the direction of the force, and F = BIl (given on the equation sheet) gives its size for a wire at right angles to the field.

A Current Makes a Magnetic Field

When a current flows through a wire, it produces a magnetic field in the space around the wire. This is the link between electricity and magnetism, and it is the foundation of every electromagnetic device.

For a straight wire, the field lines form concentric circles around the wire, lying in a plane at right angles to it. Two factors set the strength of the field:

  • the size of the current — a larger current gives a stronger field;
  • the distance from the wire — the field gets weaker as you move away.

Reversing the direction of the current reverses the direction of the magnetic field around the wire.

You can demonstrate this effect by threading a wire vertically through a piece of card and sprinkling iron filings on the card. When the current is switched on, the filings settle into circular rings, revealing the field. Small plotting compasses placed on the card line up along these circles and flip round when the current reverses.

Solenoids

A single straight wire makes only a weak field. Winding the wire into a coil, called a solenoid, adds the fields of every turn together and concentrates them.

Inside a solenoid the field is:

  • strong, because the turns reinforce one another;
  • uniform, meaning the field lines are parallel, evenly spaced and point the same way.

The magnetic field outside a solenoid has the same shape as the field around a bar magnet, with a north pole at one end and a south pole at the other.

This is why a solenoid is so useful: it behaves like a bar magnet, but one you can control with a switch. Adding more turns to the coil or increasing the current makes the field inside stronger.

Field regionShape and strength
Inside solenoidStrong and uniform (parallel, even field lines)
Outside solenoidLike a bar magnet, with a north and south pole

Electromagnets

An electromagnet is a solenoid with a core of soft iron placed inside it. Iron is magnetic and easily magnetised, so it becomes strongly magnetic when the current flows, greatly increasing the field of the coil.

The key advantage is control. Because the iron loses its magnetism when the current stops, the electromagnet can be switched on and off, and its strength varied, simply by controlling the current.

You can strengthen an electromagnet in three ways:

  • increase the current through the coil;
  • add more turns to the coil;
  • use an iron core (rather than an air core).

(Separate Physics only) You may be asked to interpret a diagram of an electromagnetic device — such as an electric bell, a relay or a scrapyard crane — and explain how it works using these ideas.

For example, an electric bell uses an electromagnet that repeatedly attracts an iron armature; each time the armature moves it breaks the circuit, the electromagnet switches off, a spring pulls the armature back, the circuit remakes, and the cycle repeats to ring the bell.

The Motor Effect (Higher Tier)

(Higher Tier only) The whole of this slide and the next is Higher Tier content.

When a current-carrying conductor is placed in a magnetic field, the field of the magnet and the field of the current interact, and the wire experiences a force. This is the motor effect. By Newton's third law, the wire and the magnet push on each other with equal and opposite forces.

The size of the force depends on:

  • the magnetic flux density (field strength) ;
  • the current in the wire;
  • the length of wire inside the field.

The force is largest when the wire is at right angles (90°) to the magnetic field, and is zero when the wire lies parallel to the field.

To get the maximum, steady force in a device, the wire is arranged perpendicular to the field lines. If the current or the field is reversed, the direction of the force reverses too.

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Fleming's Left-Hand Rule and F = BIl (Higher Tier)

(Higher Tier only) Direction and size of the motor-effect force.

To find the direction of the force, use Fleming's left-hand rule. Hold the thumb and first two fingers of your left hand at right angles to each other:

FingerRepresents
First fingerField (N to S)
Second fingerCurrent
ThumbMotion (force)

To find the size of the force on a conductor at right angles to the field:

where is the force in newtons (N), is the magnetic flux density in tesla (T), is the current in amperes (A), and is the length of the conductor in the field in metres (m).

This equation is given on the Physics equation sheet, so you do not need to memorise it, but you must be able to use and rearrange it.

Worked example — a 0.05 m length of wire carries a current of 3.0 A at right angles to a magnetic field of flux density 0.4 T. Find the force on the wire.

The force on the wire is 0.06 N.

Worked example (rearranging) — a wire of length 0.20 m in a field feels a force of 0.12 N when a current of 2.0 A flows. Find the magnetic flux density.

The magnetic flux density is 0.3 T.

Common Exam Mistakes

1. Using the wrong hand

The motor effect uses the left hand. The right hand belongs to the generator effect (induced current). Mixing them up gives the force in the wrong direction.

2. Muddling the fingers in Fleming's rule

First finger = Field, seCond finger = Current, thuMb = Motion (force). Keep all three at right angles to each other, or the directions come out wrong.

3. Forgetting the field runs north to south

In Fleming's rule the first finger points along the field, which means from the north pole to the south pole. Pointing it the wrong way reverses the predicted force.

4. Wrong angle for F = BIl

The equation applies when the wire is at right angles to the field. If the wire is parallel to the field the force is zero, and at other angles the force is smaller.

5. Unit slips in the calculation

is in tesla, in amperes and in metres. A length given in centimetres must be converted to metres first (0.05 m, not 5), or the answer will be a hundred times too large.

Key terms

Solenoid
A long coil of wire that produces a strong, uniform magnetic field inside it when a current flows.
Electromagnet
A solenoid with an iron core, whose magnetism can be switched on and off and varied by changing the current.
Motor effect
The force experienced by a current-carrying conductor when it is placed in a magnetic field (Higher Tier).
Magnetic flux density
A measure of the strength of a magnetic field, symbol B, measured in tesla (T).

Frequently asked questions

The field forms concentric circles around the wire, in a plane at right angles to it. The field is stronger when the current is larger and weaker further from the wire. Reversing the current reverses the direction of the field.

Increase the current, add more turns to the coil, or use an iron core. A solenoid concentrates the field, and inserting a soft iron core turns it into an electromagnet with a much stronger field that can be switched on and off.

The motor effect is the force felt by a current-carrying conductor placed in a magnetic field. Use Fleming's left-hand rule (Higher Tier): thumb = force, first finger = field (N to S), second finger = current. The force is largest when the wire is at 90° to the field.

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