In order to measure the internal resistance r_1 of a cell of emf E, a meter bridge of wire resistance R_0=50 Omega, a resistance R

Q: In order to measure the internal resistance $r_1$ of a cell of emf $E$, a meter bridge of wire resistance $R_0=50 \Omega$, a resistance $R_0 / 2$, another cell of emf $E / 2$ (internal resistance $r$ ) and a galvanometer $G$ are used in a circuit, as shown in the figure. If the null point is found at $l=72 cm$, then the value of $r_1=$ . . . . $\Omega$

b $i\left(\frac{R_0}{2}+0.28 R_0\right)=\frac{E_0}{2}$ $i \times 0.78 R_0=\frac{E_0}{2}$ $i=\frac{E_0}{2 \times 0.78 R_0}=\frac{E_0}{ r _1+\frac{3}{2} R _0}$ $r _1+1.5 R _0=1.56 R _0$ $r _1=0.06 R _0$ $=0.06 \times 50=3 \Omega$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

In order to measure the internal resistance $r_1$ of a cell of emf $E$, a meter bridge of wire resistance $R_0=50 \Omega$, a resistance $R_0 / 2$, another cell of emf $E / 2$ (internal resistance $r$ ) and a galvanometer $G$ are used in a circuit, as shown in the figure. If the null point is found at $l=72 cm$, then the value of $r_1=$ . . . . $\Omega$

A$2$
B$3$
C$4$
D$5$

IIT 2021, Advanced

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

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