Two cells `e_(1) and e_(2)` connected in opposition to each other as shown in figure. The cell of emf 9 V and internal resistance `3Omega` the cell is of emf 7V and internal resistance `7Omega`. The potential difference between the points A and B is A. 8.4VB. 5.6VC. 7.8VD. 6.6V

Two cells `e_(1) and e_(2)` connected in opposition to each other as s

1.	Two cells `e_(1) and e_(2)` connected in opposition to each other as shown in figure. The cell of emf 9 V and internal resistance `3Omega` the cell is of emf 7V and internal resistance `7Omega`. The potential difference between the points A and B is A. 8.4VB. 5.6VC. 7.8VD. 6.6V
Answer» Correct Answer - A `I=(Deltaepsi)/(r_(1)+r_(2))=(9-7)/(3+7)=(2)/(10)=0.2A` Potential difference across cell `epsi_(1)` is `=9-0.2xx3=9-0.6=8.4V` Potential difference across `epsi_(2)`, `V_(AB")=epsi_(2)+0.2 r_(2)=7+0.2xx7=7+1,4=8.4V`

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Two cells `e_(1) and e_(2)` connected in opposition to each other as shown in figure. The cell of emf 9 V and internal resistance `3Omega` the cell is of emf 7V and internal resistance `7Omega`. The potential difference between the points A and B is A. 8.4VB. 5.6VC. 7.8VD. 6.6V

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