The given figure represents an arrangement of potentiometer for the calculation of internal resistance (r) of the unknown battery (E). The balance length is 70.0,

Q: The given figure represents an arrangement of potentiometer for the calculation of internal resistance $(r)$ of the unknown battery $(E)$. The balance length is $70.0\, cm$ with the key opened and $60.0\,cm$ with the key closed. $R$ is $132.40 \Omega $. The internal resistance $(r)$ of the unknown cell will be.......$\Omega$ (Given $E_o > E$) :-

a Internal resistance $r=\frac{R\left[l-l^{\prime}\right]}{l^{\prime}}$ where $l=$ balanced length with key open. $l^{\prime}=$ balanced length with key $K$ closed $\therefore r=\frac{132.40[70-60]}{60}=\frac{132.40 \times 10}{60}$ $=21.06\, \Omega \approx 22.1\, \Omega$

SECTION - A [PHYSICS MCQ]

GSEB - English Medium

The given figure represents an arrangement of potentiometer for the calculation of internal resistance $(r)$ of the unknown battery $(E)$. The balance length is $70.0\, cm$ with the key opened and $60.0\,cm$ with the key closed. $R$ is $132.40 \Omega $. The internal resistance $(r)$ of the unknown cell will be.......$\Omega$ (Given $E_o > E$) :-

A$22.1$
B$113.5 $
C$154.5$
D$10$

Medium

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

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