Consider the circuit shown in the figure...

Consider the circuit shown in the figure. Both the circuits are taking same current from battery but current through `R` in the second circuit is `(1)/(10) th` of current through `R` in the first circuit. If `R` is `11 Omega`, the value of `R_(1)`

`9.9 Omega`

`11 Omega`

`8.8 Omega`

`7.7 Omega`

Text Solution

Verified by Experts

The correct Answer is:

(a) In Figure `(b)` through `R_(2) = i-(i)/(10) =(9i)/(10)`
Potentail difference across `R_(2) =` Potentail difference
across `R implies R_(2) xx (9)/(10) i= R xx (i)/(10) implies R_(2) = (R )/(9) = (11)/(9) Omega`
`R_(eq) = (R_(2) xx R)/((R_(2) + R)) = ((11)/(9) xx (11)/(1))/((11)/(9) + (11)/(1)) = (11)/(10) Omega`
Total circuit resistance `= (11)/(10) + R_(1) = R = 11`
`implies R_(1) = 9.9 Omega`

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