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(B) To convert a galvanometer into an ammeter,a shunt resistance $S$ is connected in parallel with the galvanometer.Given:Galvanometer resistance $R_g

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$\frac{R}{4}$

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(B) To convert a galvanometer into an ammeter,a shunt resistance $S$ is connected in parallel with the galvanometer.Given:Galvanometer resistance $R_g = R$Full-scale deflection current $i_g = 2 \ A$Maximum current to be measured $I = 10 \ A$Since the galvanometer and the shunt resistance are in parallel,the potential difference across them is the same:$V_g = V_s$$i_g R_g = (I - i_g) S$Substituting the given values:$2 	imes R = (10 - 2) 	imes S$$2 R = 8 S$$S = \frac{2 R}{8} = \frac{R}{4}$Therefore,the required shunt resistance is $\frac{R}{4}$.

An ammeter of resistance $R$ gives a full-scale deflection when a current of $2 \ A$ passes through it. If it is to be converted into an ammeter to measure a maximum current of $10 \ A$,the required shunt is:

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