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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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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, IgI_g). 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 IgI_g at full deflection, while the shunt carries the excess current (I−Ig)(I - I_g). The shunt resistance SS is chosen so that at the desired maximum current II, exactly IgI_g flows through the galvanometer. Since the voltage across parallel branches is equal:

Ig⋅G=(I−Ig)⋅SI_g \cdot G = (I - I_g) \cdot S

where GG is the galvanometer resistance. Solving:

S=IgGI−IgS = \frac{I_g G}{I - I_g}

For a large range (I≫IgI \gg I_g), SS becomes very small — hence a small resistance in parallel.

Watch out

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:

  1. Understand the galvanometer's limitation: A galvanometer is essentially a sensitive moving-coil meter with resistance GG (typically 10–100 Ω\Omega) and full-scale deflection current IgI_g (often a few mA). It cannot handle large currents directly — passing a large current through it would permanently damage the coil.

  2. 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.

  3. Why parallel (shunt) works: Connecting a small resistance SS in parallel creates a current divider. At full-scale deflection, the total current II entering the ammeter splits: IgI_g through the galvanometer and (I−Ig)(I - I_g) through the shunt. The shunt "steals" the excess current. The parallel combination also reduces the overall ammeter resistance to GSG+S\frac{G S}{G+S}, which is very small — ideal for an ammeter.

  4. Derive the shunt value: Using the voltage equality across parallel branches: …

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