Q.A galvanometer can be converted into an ammeter of desired range by connecting a: (A) small resistance in series (B) large resistance in series (C) small resistance in parallel (D) large resistance in parallel
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Start your 14-day free trial to unlock the full solution →To convert a galvanometer into an voltmeter, a large resistance is connected in series with it. For an ammeter, a small resistance is connected in parallel. The question asks for ammeter conversion, so the correct choice is (C) small resistance in parallel.
The key idea is that a galvanometer is a sensitive current-measuring device that deflects fully for a small current (its full-scale deflection current, ). To measure larger currents (as an ammeter does), we need to bypass most of the current around the galvanometer coil, protecting it from burning out. This is done by connecting a shunt — a small resistance — in parallel.
Why parallel? Because a parallel path divides the current. The galvanometer still sees only at full deflection, while the shunt carries the excess current . The shunt resistance is chosen so that at the desired maximum current , exactly flows through the galvanometer. Since the voltage across parallel branches is equal:
where is the galvanometer resistance. Solving:
For a large range (), becomes very small — hence a small resistance in parallel.
A common mistake is confusing ammeter and voltmeter conversion. For a voltmeter, you add a large series resistance to limit voltage. For an ammeter, you add a small parallel resistance to shunt current. Mixing them up leads to wrong answers.
Now, let's work through the reasoning step by step:
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Understand the galvanometer's limitation: A galvanometer is essentially a sensitive moving-coil meter with resistance (typically 10–100 ) and full-scale deflection current (often a few mA). It cannot handle large currents directly — passing a large current through it would permanently damage the coil.
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Goal of an ammeter: An ammeter must measure a wide range of currents (say 0–1 A or more) while offering very low resistance to the circuit, so it doesn't disturb the current being measured. The galvanometer alone has too high a resistance and too low a current capacity.
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Why parallel (shunt) works: Connecting a small resistance in parallel creates a current divider. At full-scale deflection, the total current entering the ammeter splits: through the galvanometer and through the shunt. The shunt "steals" the excess current. The parallel combination also reduces the overall ammeter resistance to , which is very small — ideal for an ammeter.
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Derive the shunt value: Using the voltage equality across parallel branches: …
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