Two cells of 6 V and 4 V having internal resistance of 3Omega and 2Omegarespectively are connected in parallel so as to send a current through an external resistance 8Omegain the same direction. Find the current through the cells and the current through the external resistance.

Two cells of 6 V and 4 V having internal resistance of 3Omega and 2Ome

1.	Two cells of 6 V and 4 V having internal resistance of 3Omega and 2Omegarespectively are connected in parallel so as to send a current through an external resistance 8Omegain the same direction. Find the current through the cells and the current through the external resistance.
Answer» SOLUTION : From Kirchoff.s LOOP rule, To the loop ABEFA, we GET `(I_1 + I_2) 8 + 3I_1 = 6` `8I_1 + 8I_2 + 3I_1 = 6` `11I_1 + 8I_2 = 6`……(1) The loop BEDCB, we get `(I_1 + I_2) 8 + 2I_1 = 4` `8I_1 + 8I_2 + 2I_2 = 4` `8I_1 + 10I_2 = 4`.....(2) `I_1 = 36/44` `I_1 = 0.818 A` From (2)` 8(0.818) + 10I_2 = 4` `6.544 + 10I_2 = 4` `10I_2 = 4 - 6.544` `10I_2 = -2.544` `I_2 = -0.2544A` The current through the EXTERNAL resistance `I = I_1 + I_2 = 0.818 - 0.2544` `I = 0.5636 A`

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Two cells of 6 V and 4 V having internal resistance of 3Omega and 2Omegarespectively are connected in parallel so as to send a current through an external resistance 8Omegain the same direction. Find the current through the cells and the current through the external resistance.

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