The resistances in the two arms of the meter bridge are 5 Ω and R Ω respectively. When the resistance R is shunted with an equal resistance, the new balance point is at 1.6l1. The resistance R is

Question

The resistances in the two arms of the meter bridge are 5 Ω and R Ω respectively. When the resistance R is shunted with an equal resistance, the new balance point is at 1.6l1. The resistance R is (A) 10 Ω (B) 15 Ω (C) 20 Ω (D) 25 Ω

Tardigrade Admin · Accepted Answer

In the first case,

At balance point (5/R)=(l1/100-l1)...(i) In the second case,

At balance point (5/(R/2))=(1.6l1/100-1.6l1) ..(ii) Divide eqn. (i) by eqn. (ii), we get (1/2)=(100-1.6l1/1.6(100-l1)) 160-1.6l1=200-3.2l1 1.6l1 = 40 or l1=(40/1.6)=25 cm Substituting this value in eqn. (i), we get (5/R)=(25/75) R=(375/25) Ω = 15 Ω

Q. The resistances in the two arms of the meter bridge are $5 Ω$ and $R Ω$ respectively. When the resistance $R$ is shunted with an equal resistance, the new balance point is at $1.6 l_{1}$ . The resistance $R$ is

$10 Ω$

$15 Ω$

$20 Ω$

$25 Ω$

Q. The resistances in the two arms of the meter bridge are 5Ω and RΩ respectively. When the resistance R is shunted with an equal resistance, the new balance point is at 1.6l1​. The resistance R is

10Ω

15Ω

20Ω

25Ω

Q. The resistances in the two arms of the meter bridge are $5 Ω$ and $R Ω$ respectively. When the resistance $R$ is shunted with an equal resistance, the new balance point is at $1.6 l_{1}$ . The resistance $R$ is

$10 Ω$

$15 Ω$

$20 Ω$

$25 Ω$