TS EAMCET · Physics · Current Electricity
In a potentiometer experiment, a wire of length 10 m and resistance \(5 \Omega\) is connected to a cell of emf 2.2 V. If the potential difference between two points separated by a distance of 660 cm on potentiometer wire is 1.1 V, then the internal resistance of the cell is
- A \(1.6 \Omega\)
- B \(1.4 \Omega\)
- C \(1.2 \Omega\)
- D \(1 \Omega\)
Answer & Solution
Correct Answer
(A) \(1.6 \Omega\)
Step-by-step Solution
Detailed explanation
\(R_{seg} = (5 \Omega / 10 \text{ m}) \times 6.6 \text{ m} = 3.3 \Omega\) \(I = V_{seg} / R_{seg} = 1.1 \text{ V} / 3.3 \Omega = 1/3 \text{ A}\) \(E = I(R_{wire} + r)\) \(2.2 \text{ V} = (1/3 \text{ A})(5 \Omega + r)\) \(r = (2.2 \times 3) - 5 = 6.6 - 5 = 1.6 \Omega\)
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