A battery of internal resistance 4Ω is connected to the network of resistances as shown in the figure. In order that the maximum power can be delivered to the network, the value of 𝑅 in Ω should be
A
49
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B
2
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C
83
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D
18
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Solution
The correct option is B2 We know that P=E2Req+r
For maximum power r=Req r=4Ω
Let us now try to find Req in this circuit
This circuit can be further represented as
This is a classic case of wheatstone's bridge. It means that no current will flow through the branch containing 6R resistance.
Now, the equivalent resistance will be Req=3R×6R3R+6R ⟹Req=2R
Now, for maximum power to be delivered r=2R 4Ω=2R ⟹R=2Ω