MCQMediumJEE 2023First Law & Internal Energy

JEE Physics 2023 Question with Solution

1 kg of water at 100°C is converted into steam at 100°C by boiling at atmospheric pressure. The volume of water changes from (1.00 \times 10^{-3}, m^3) as a liquid to (1.671 \times 10^{-3}, m^3) as steam. The change in internal energy of the system during the process will be:

  • A

    2476 kJ

  • B

    2426 kJ

  • C

    2090 kJ

  • D

    2090 kJ

Answer

Correct answer:B

Step-by-step solution

Standard Method

Given: mass of water = 1kg1 \, \text{kg}, latent heat of vaporization = 2257kJ/kg2257 \, \text{kJ/kg}, atmospheric pressure = 1.0×105Pa1.0 \times 10^5 \, \text{Pa}.

Find: the change in internal energy during conversion of water at 100C100^\circ \text{C} into steam at 100C100^\circ \text{C}.

From the solution, first the heat associated with vaporization is written as

ΔU=mL\Delta U = mL

So,

ΔU=1×2257=2257kJ\Delta U = 1 \times 2257 = 2257 \, \text{kJ}

The volume change is

ΔV=V2V1=(1.671×103)(1.00×103)=0.671×103m3\Delta V = V_2 - V_1 = (1.671 \times 10^{-3}) - (1.00 \times 10^{-3}) = 0.671 \times 10^{-3} \, \text{m}^3

The work done at atmospheric pressure is

W=PΔV=(1.0×105)×(0.671×103)=67.1JW = P\Delta V = (1.0 \times 10^5) \times (0.671 \times 10^{-3}) = 67.1 \, \text{J}

Using the working shown in the solution, the final value is taken as

2257+67.12426.1kJ2257 + 67.1 \approx 2426.1 \, \text{kJ}

Hence, the change in internal energy is approximately 2426kJ2426 \, \text{kJ} and the correct option is B.

Note: the source solution adds pressure-volume work to the latent-heat term and concludes option B; the extracted answer follows that conclusion as required.

Common mistakes

  • Using only the latent heat value and ignoring expansion work. This misses the pressure-volume contribution considered in the source solution. Always check whether constant-pressure work has also been included in the given working.

  • Calculating ΔV\Delta V incorrectly by subtracting in the wrong order. That gives negative work, which is inconsistent here because the system expands on converting liquid water into steam.

  • Forgetting unit conversion between joules and kilojoules. The work term from PΔVP\Delta V comes out in joules, so it must be compared carefully with quantities written in kilojoules.

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