MCQMediumJEE 2023Wheatstone Bridge & Meter Bridge

JEE Physics 2023 Question with Solution

The equivalent resistance between A and B of the network shown in figure:

Circuit network between points A and B with upper branch resistors R and 3R, middle branch resistors 2R and 9R, and lower branch resistor 6R.Small overlay handle icon from editor interface partially covering the circuit image; not part of the physics diagram.
  • A

    11R3\frac{11R}{3}

  • B

    14R14R

  • C

    21R21R

  • D

    8R3\frac{8R}{3}

Answer

Correct answer:C

Step-by-step solution

Standard Method

Given: The resistance network is connected between A and B.

Find: The equivalent resistance between A and B.

The wheat stone bridge is in balanced condition.

Equivalent diamond-shaped Wheatstone bridge between A and B with resistors R and 3R on upper path, 2R and 6R on lower path.

So the central branch does not affect the equivalent resistance, and the circuit reduces to two series branches in parallel.

Upper branch resistance:

R+3R=4RR + 3R = 4R

Lower branch resistance:

2R+6R=8R2R + 6R = 8R

Hence,

1Req=14R+18R\frac{1}{R_{eq}} = \frac{1}{4R} + \frac{1}{8R}

Therefore,

Req=8R3R_{eq} = \frac{8R}{3}

The working gives equivalent resistance 8R3\frac{8R}{3}. Since this value corresponds to option D in the listed options, the correct option by the extracted working is D. The solution label showing C is inconsistent with the computed result.

Common mistakes

  • Treating the bridge as unbalanced and including the 9R9R branch in current flow is incorrect because the solution states the wheat stone bridge is balanced. First check the balance condition, then remove the central branch from consideration.

  • Adding all resistors directly is wrong because the network is not a single series path. After reducing the balanced bridge, identify the two series branches and then combine those branches in parallel.

  • Using the parallel formula incorrectly for 4R4R and 8R8R leads to an incorrect equivalent resistance. Use

    1Req=14R+18R\frac{1}{R_{eq}} = \frac{1}{4R} + \frac{1}{8R}

    and then invert carefully.

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