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Wheatstone Bridge
Ed

Créé par

Ed

17. août 2026FI
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Wheatstone Bridge

A way to measure resistance precisely without trusting your meter, your battery or your wires. Four resistors form a diamond; a detector sits across the middle. Adjust one arm until the detector reads exactly zero, and at that instant the unknown resistance is fixed by a ratio of the other three — nothing else. Because the answer depends only on balance and not on how much current flows, it is immune to a sagging battery or a poorly calibrated needle. Samuel Hunter Christie described the arrangement in 1833; Charles Wheatstone popularised it in 1843 and openly credited Christie, though the name that stuck was his. Null methods like this remain the backbone of precision measurement, and every strain gauge and load cell still uses one.
Intermédiaire
2 hours

Consignes

1

Build the diamond

Four arms meet at four corners. Label them so the maths stays straight.

  1. Corners A and C are opposite: the supply connects across these.
  2. Corners B and D are the other pair: the detector goes across these.
  3. Arms A–B and B–C are the known ratio arms, R1 and R2.
  4. Arm A–D is the variable arm R3; arm D–C holds the unknown, Rx.
Use resistors of similar magnitude to the unknown. A bridge is most sensitive when the arms are comparable; wildly mismatched arms give a lazy, hard-to-find null.

Matériaux pour cette étape :

1/4W Resistor Kit (600pcs, 30 Values)1/4W Resistor Kit (600pcs, 30 Values)1 kit
Copper Wire (20 Gauge)Copper Wire (20 Gauge)1 length
2

Fit the detector across the middle

Connect the galvanometer between B and D. This is the instrument that has to be sensitive, not accurate — it only ever has to tell you when the reading is zero.

That distinction is the whole trick. A galvanometer whose scale is wrong by twenty per cent still finds the null perfectly, and the null is where the answer lives.

Matériaux pour cette étape :

Analog GalvanometerAnalog Galvanometer1 pièce
3

Balance the bridge

Apply the supply across A and C, then adjust R3 until the detector reads exactly zero.

  1. Start coarse, then refine.
  2. Tap the supply on briefly rather than leaving it connected while you hunt — self-heating changes the very resistances you are measuring.

At balance: Rx = R3 × (R2 / R1)

At the null, no current flows through the detector, which means B and D sit at exactly the same potential. Nothing about the supply voltage appears in the answer — that is why a tired battery does not spoil the measurement.
4

Prove it is immune to the supply

The claim above is testable in a minute, so test it.

  1. Balance the bridge and note R3.
  2. Swap the supply for one of noticeably different voltage.
  3. Re-balance. The null should land at the same R3.
If the balance point moves, something is wrong with the build — usually self-heating, a poor joint, or a supply so weak the detector cannot resolve the null. A working bridge genuinely does not care what drives it.

Matériaux pour cette étape :

Digital Multimeter - BasicDigital Multimeter - Basic1 pièce
5

History and context

Samuel Hunter Christie published this circuit in 1833 as a way of comparing wires. Charles Wheatstone found it, saw what it was for, developed it into a practical instrument in 1843 — and said plainly in his paper that the arrangement was Christie's. The misattribution in the name was not Wheatstone's doing.

Its first heavy use was the telegraph, where finding the distance to a fault on a buried or submarine line meant measuring resistance accurately in the field, with whatever battery was to hand. The Wheatstone bridge and its variants — the Kelvin double bridge for very low resistances, the Wheatstone-derived AC bridges for capacitance and inductance — carried precision measurement for a century.

It has not retired. Every strain gauge, load cell and pressure sensor works by unbalancing a bridge slightly and reading the difference, which is why a supermarket scale and a 19th-century telegraph fault-finder share a circuit diagram.

Matériaux

4
Total estimé
€13.00

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