The emf of a cell is `epsilon` and its internal resistance is r. its termnals are cannected to a resistance R. The potential difference between the terminals is `1.6V for R = 4 Omega, and 1.8 V for R = 9 Omega. Then,A. `epsilon =1 V, r = 1 Omega`B. `epsilon =2V, r = 1 Omega`C. `epsilon =2 V, r =2Omega`D. `epsilon =2.5 V, r = 0.5 Omega`

The emf of a cell is `epsilon` and its internal resistance is r. its t

1.	The emf of a cell is `epsilon` and its internal resistance is r. its termnals are cannected to a resistance R. The potential difference between the terminals is `1.6V for R = 4 Omega, and 1.8 V for R = 9 Omega. Then,A. `epsilon =1 V, r = 1 Omega`B. `epsilon =2V, r = 1 Omega`C. `epsilon =2 V, r =2Omega`D. `epsilon =2.5 V, r = 0.5 Omega`
Answer» Correct Answer - B Current in the cirut is `I = (epsilon)/(R +r)` Potential difference across cell - potential differnce across R ` = iR = (epsilonR)/(R +r)` Set up two equations with the given data and sovle for `epsilon, r.`

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