Six lead-acid type of secondary cells each of EMF 3 V and internal resistance 0.30 Ω are joined in series in the same direction to provide a supply to a resistance of 10 Ω. What is the potential drop across the external resistor?
A
13.2 V
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B
15.2V
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C
17.2V
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D
19.2V
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Solution
The correct option is B 15.2V We have 6 cells in the same direction. So their EMF’s and internal resistances get added up. So find the total EMF and R of the combination. E=6 × 3 = 18V R=6 × 0.3 = 1.8 Ω R’ = 10 Ω Since all these are in series, we just have to find current. I=ER+R′ I=1.52A So potential drop across 10 Δ is V=IR’ = 15.2V