MCQEasyJEE 2024Isothermal & Adiabatic Processes

JEE Physics 2024 Question with Solution

The given figure represents two isobaric processes for the same mass of an ideal gas. Then:

  • A

    P2P1P_2 \geq P_1

  • B

    P2>P1P_2 > P_1

  • C

    P1=P2P_1 = P_2

  • D

    P1>P2P_1 > P_2

Answer

Correct answer:D

Step-by-step solution

Standard Method

Given: Two isobaric processes for the same mass of an ideal gas are shown on a VV-TT graph.

Find: The correct relation between P1P_1 and P2P_2.

For an ideal gas,

PV=nRTPV = nRT

Rearranging,

V=(nRP)TV = \left( \frac{nR}{P} \right) T

So, in a VV-TT graph, the slope is

Slope=VT=nRP\text{Slope} = \frac{V}{T} = \frac{nR}{P}

Hence, slope is inversely proportional to pressure:

Slope1P\text{Slope} \propto \frac{1}{P}

The line corresponding to P2P_2 is steeper than the line corresponding to P1P_1. Therefore,

(Slope)2>(Slope)1    P2<P1(\text{Slope})_2 > (\text{Slope})_1 \implies P_2 < P_1

Thus,

P1>P2P_1 > P_2

Therefore, the correct option is D.

Slope Comparison Trick

Given: Two isobaric lines are drawn on a VV-TT graph for the same gas.

Find: Which pressure is greater.

In an isobaric VV-TT graph, a steeper line means larger VT\frac{V}{T}. Since

V=(nRP)TV = \left( \frac{nR}{P} \right) T

a larger slope means smaller pressure. Therefore, the steeper line corresponds to lower pressure.

Since the line for P2P_2 is steeper, P2P_2 is lower than P1P_1. Therefore, the correct option is D, that is, P1>P2P_1 > P_2.

Common mistakes

  • Assuming that a steeper line means greater pressure. This is wrong because in a VV-TT graph for an isobaric process, slope is nRP\frac{nR}{P}, which is inversely proportional to pressure. Compare pressure using the reciprocal relation.

  • Using the ideal gas law without rearranging it into the graph form. This is wrong because the graph directly compares VV with TT. First write V=(nRP)TV = \left( \frac{nR}{P} \right) T, then interpret the slope.

  • Ignoring that the same mass of gas is given. This is wrong because for the same gas sample, nRnR remains constant, so only pressure changes the slope. Keep nn fixed while comparing the two lines.

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