NVAEasyJEE 2023Resistivity & Conductivity

JEE Physics 2023 Question with Solution

If a copper wire is stretched to increase its length by 20%20\%. The percentage increase in resistance of the wire is:

Answer

Correct answer:44

Step-by-step solution

Standard Method

Given: The length of the copper wire is increased by 20%20\%, so L2=1.2L1L_2 = 1.2L_1.

Find: The percentage increase in resistance.

The resistance of a wire is given by

R=ρLAR = \rho \frac{L}{A}

where LL is the length and AA is the cross-sectional area.

When a wire is stretched, its volume remains constant:

L1A1=L2A2L_1 A_1 = L_2 A_2

As L2=1.2L1L_2 = 1.2L_1, the area becomes

A2=A11.2A_2 = \frac{A_1}{1.2}

The new resistance is

R2=ρL2A2=ρ1.2L1A1/1.2=1.44R1R_2 = \rho \frac{L_2}{A_2} = \rho \frac{1.2L_1}{A_1/1.2} = 1.44R_1

Therefore, the percentage increase in resistance is

%Increase=R2R1R1×100=1.44R1R1R1×100=44%\%\,\text{Increase} = \frac{R_2 - R_1}{R_1} \times 100 = \frac{1.44R_1 - R_1}{R_1} \times 100 = 44\%

Therefore, the percentage increase in resistance is 44%44\%.

Using proportionality

Given: The wire is stretched so that its length becomes 1.21.2 times the original length.

Find: The percentage increase in resistance.

If volume remains constant, then resistance varies as

RL2R \propto L^2

So,

R2R1=(1.2)2=1.44\frac{R_2}{R_1} = \left(1.2\right)^2 = 1.44

Hence the increase is

(1.441)×100=44%(1.44 - 1) \times 100 = 44\%

Therefore, the correct numerical answer is 4444.

Common mistakes

  • Using RLR \propto L only and forgetting that the cross-sectional area changes when the wire is stretched. This is wrong because the area decreases as length increases. Use constant volume first, then substitute in R=ρLAR = \rho \frac{L}{A}.

  • Calculating the new resistance ratio as 1.21.2 instead of 1.441.44. This is wrong because both the increase in length and decrease in area affect resistance. Treat the combined effect carefully.

  • Reporting 1.441.44 or 144%144\% as the percentage increase. This is wrong because 1.44R11.44R_1 is the new resistance, not the increase. Subtract R1R_1 first, then convert to percentage.

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