Figure (i) below shows a Wheatstone's bridge in which P, Q, R and S are fixed resistances, G is a galvanometer and B is a

Q: Figure $(i)$ below shows a Wheatstone's bridge in which $P, Q, R$ and $S$ are fixed resistances, $G$ is a galvanometer and $B$ is a battery. For this particular case, the galvanometer shows zero deflection. Now, only the positions of $B$ and $G$ are interchanged, as shown in figure $(ii)$. The new deflection of the galvanometer

c (c) In case $(i)$, galvanometer shows zero deflection. $\therefore V_B=V_D$ $\Rightarrow \frac{P}{S}=\frac{Q}{R} \quad \dots(i)$ When battery $B$ and galvanometer $G$ are interchanged, position of galvanometer is as shown below, Now, ratio of resistances across galvanometer is $\frac{S}{P} \text { and } \frac{R}{Q}$ As from Eq. $(i)$, $\frac{S}{P}=\frac{R}{Q}$ Hence, galvanometer still shows zero deflection because Wheatstone's bridge is balanced.

SECTION - A [PHYSICS MCQ]

GSEB - English Medium

Figure $(i)$ below shows a Wheatstone's bridge in which $P, Q, R$ and $S$ are fixed resistances, $G$ is a galvanometer and $B$ is a battery. For this particular case, the galvanometer shows zero deflection. Now, only the positions of $B$ and $G$ are interchanged, as shown in figure $(ii)$. The new deflection of the galvanometer

A
is to the left
B
is to the right
C
is zero
Ddepends on the values of $P, Q, R$ and $S$

KVPY 2010, Medium

STD 11 Science
JEE
STD 12 - 3. current electricity
Physics

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