PractiseRequired practicals › Flux linkage and a search coil

REQUIRED PRACTICAL 11

Flux linkage and a search coil

Using a search coil and an oscilloscope to see how magnetic flux linkage varies with the angle between the coil and the field.

What you are trying to do

Use a search coil and an oscilloscope to show that the flux linkage through a coil follows the cosine of the angle between the coil's normal and the field.

Apparatus

  • A large field coil driven by an ac signal generator, producing an alternating field of fixed amplitude at its centre
  • A small search coil of many turns on an insulating handle, mounted on a protractor so its angle can be set
  • An oscilloscope to read the amplitude of the induced emf

Variables

  • Independent: the angle θ between the search coil's normal and the field
  • Dependent: the amplitude of the induced emf on the oscilloscope
  • Control: the field amplitude and frequency, and the search coil's position at the centre of the field coil

Method

  1. Drive the field coil with a steady ac signal; the alternating field induces an emf in the search coil whose amplitude is proportional to its flux linkage.
Tilt the coil and only the component of B along the coil's normal counts: flux linkage N phi = BAN cos theta, with theta measured to the normalnormalθNΦ = BAN cos θθ is to thenormal, notthe coil face
FIG. 1The angle that matters is measured from the field to the coil's NORMAL, not to its face; face-on means θ = 0 and maximum linkage.
  1. Centre the search coil where the field is uniform, set θ = 0 (coil face-on), and record the peak-to-peak height of the trace.
  2. Rotate in steps of fifteen degrees to ninety, recording the amplitude at each angle without moving the coil's centre.
Magnetic flux counts the field passing through an area: face-on, the normal along B, phi equals B times ABarea A in perspective: its normal is parallel to BΦ = BA, measured in webers
FIG. 2What is being sampled: the flux through the coil's area, drawn face-on in perspective with the field passing through the plate, scaled by the cosine as the coil turns.

Analysis

  1. The linkage is NΦ = BANcos θ, and the induced amplitude is proportional to it, so plot the amplitude against cos θ.
  2. A straight line through the origin is the result: linkage, and with it the induced emf, follows the cosine of the angle to the normal.
  3. What the line gives you, and what it does not. Straight and through the origin, it supports NΦ = BANcos θ over the quarter turn you covered. It does not give B, because the gradient carries N and A along with it, and it says nothing about frequency, which you held fixed. If you want the cosine tested over more of its shape, keep turning past ninety degrees towards a hundred and eighty and watch the amplitude grow again as the linkage rebuilds with the opposite sign, though an amplitude reading alone cannot show that reversal; seeing the sign change needs a phase reference, such as the drive signal on the scope's second channel.
  4. Where this method is weakest. An oscilloscope resolves a fraction of a division, so the amplitudes you read best are the large ones near face-on and the ones you read worst are near ninety degrees, which is exactly where the model makes its sharpest prediction. The experiment is least sensitive where it would be most decisive, and no amount of care with the protractor changes that. Recording the trace with the field coil switched off, then subtracting it, is the improvement that helps, because it measures the pickup instead of hiding it.

A worked set of readings

Amplitudes from the oscilloscope at fifteen-degree steps:

θ / °cos θAmplitude / V
01.0004.00
150.9663.86
300.8663.46
450.7072.83
600.5002.00
750.2591.04
900.0000.00

Idealised illustrative data, chosen so the working is easy to follow. Real readings scatter about the line rather than sitting on it, and your own graph will have points either side of the best fit.

Amplitude against cos θ is a straight line through the origin with gradient 4.00 V, the face-on amplitude: linkage follows BANcos θ exactly as the model says.

Evaluating the result

Idealised readings with the last one left as a real search coil leaves it. Edge on, the flux linkage is zero and the model predicts no signal at all, but the trace does not collapse to a flat line: mains fields and the leads themselves induce something. Every other row here is 4.00 V times cos θ.

θ / °cos θAmplitude / V
01.0004.00
450.7072.83
750.2591.04
900.0000.20

Idealised illustrative data, chosen so the working is easy to follow. Real readings scatter about the line rather than sitting on it, and your own graph will have points either side of the best fit.

The first three rows sit on the cosine and the last reads 0.20 V where the model says zero. Treat it as information rather than as a point to delete: switch the field coil off and look again, and if 0.20 V is still there, it is pickup and it belongs in your evaluation. On the amplitude against cos θ graph it lifts the whole line off the origin, so a line forced through zero would tilt to reach it and quietly bias every other reading.

Where the uncertainty comes from

  • Angle setting: A protractor mount reads to a degree or two; the cosine is flattest near zero, so errors there matter least, and most near ninety degrees.
  • Position drift: The field is uniform only near the centre of the field coil; rotating without translating is the manual skill.
  • Reading the trace: Use peak-to-peak and halve it: the full height is easier to judge against the graticule than a single peak.
  • Amplifier and coupling: Keep the oscilloscope settings fixed from first reading to last so every amplitude is on the same scale.

What earns the marks

  • Define θ to the normal, and say face-on is maximum. The angle definition is the most reliably examined sentence in this practical.
  • Plot against cos θ to linearise, and expect the through-origin check.
  • Peak-to-peak halved, with the scope's volts-per-division stated.
  • Know why an ac field is needed at all: a steady flux linkage induces nothing; it is the changing flux that drives the emf.

Safety

Nothing here bites: signal-level voltages throughout. The field coil can warm with sustained drive, so switch off between runs.

Method and analysis here follow the standard approach; your school may vary the apparatus. Always follow your teacher’s risk assessment in the lab.