The resistance in the two arms of the meter bridge are `5 Omega` and `R Omega`, respectively. When the resistance `R` is shunted with an equal resistance, the new balance point is `1.6 l_(1)`. The resistance `R` is A. `15 Omega`B. `20 Omega`C. `25 Omega`D. `10 Omega`

The resistance in the two arms of the meter bridge are `5 Omega` and `

1.	The resistance in the two arms of the meter bridge are `5 Omega` and `R Omega`, respectively. When the resistance `R` is shunted with an equal resistance, the new balance point is `1.6 l_(1)`. The resistance `R` is A. `15 Omega`B. `20 Omega`C. `25 Omega`D. `10 Omega`
Answer» Correct Answer - A Initial condition, `(5)/(l_1) = ( R)/(100 - l_1)` …(i) Final condition, `(5)/(1.6 l_1) = (R//2)/(100 - 1.6 l_1)` …(ii) (i)//(ii) `rArr 1.6 = (2(100 - 1.6 l_1))/(100 - l_1)` `160 - 1.6 l_1 = 200 - 3.2 l_1` `1.6 l_1 = 40 rArr l_1 = (400)/(16) = 25` From (i) `(5)/(25) = (R)/(100 - 25) rArr R = 15 Omega`.

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The resistance in the two arms of the meter bridge are `5 Omega` and `R Omega`, respectively. When the resistance `R` is shunted with an equal resistance, the new balance point is `1.6 l_(1)`. The resistance `R` is A. `15 Omega`B. `20 Omega`C. `25 Omega`D. `10 Omega`

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