MCQEasyJEE 2025Internal Energy & Enthalpy

JEE Chemistry 2025 Question with Solution

A liquid when kept inside a thermally insulated closed vessel at 25C25^{\circ}C was mechanically stirred from outside. What will be the correct option for the following thermodynamic parameters?

  • A

    ΔU>0,q=0,w>0\Delta U>0, q=0, w>0

  • B

    ΔU=0,q=0,w=0\Delta U=0, q=0, w=0

  • C

    ΔU<0,q=0,w>0\Delta U<0, q=0, w>0

  • D

    ΔU=0,q<0,w>0\Delta U=0, q<0, w>0

Answer

Correct answer:A

Step-by-step solution

Standard Method

Given: A liquid is kept in a thermally insulated closed vessel and is mechanically stirred from outside.

Find: The correct signs of ΔU\Delta U, qq, and ww.

Since the vessel is thermally insulated, there is no heat exchange with the surroundings.

q=0q = 0

Mechanical stirring means external work is done on the system, so work is positive.

w>0w > 0

Using the first law of thermodynamics,

ΔU=q+w\Delta U = q + w

Substituting the known values,

ΔU=0+w>0\Delta U = 0 + w > 0

Therefore, the internal energy increases.

Hence,

ΔU>0,  q=0,  w>0\Delta U > 0, \; q = 0, \; w > 0

Therefore, the correct option is A.

Stepwise Sign Analysis

Given: The vessel is thermally insulated and closed, and the liquid is stirred mechanically from outside.

Find: Which option correctly represents ΔU\Delta U, qq, and ww.

  1. System description: A thermally insulated vessel does not allow heat exchange, so
q=0q = 0
  1. Work done: Mechanical stirring transfers energy to the liquid as work done on the system, therefore
w>0w > 0
  1. Change in internal energy: By the first law of thermodynamics,
ΔU=q+w\Delta U = q + w

Putting q=0q=0,

ΔU=w>0\Delta U = w > 0

Thus the internal energy of the liquid increases.

So the correct thermodynamic parameters are ΔU>0,q=0,w>0\Delta U>0, q=0, w>0, which corresponds to option A.

Common mistakes

  • Assuming stirring does not count as work. This is wrong because mechanical stirring transfers energy from the surroundings to the system as work. Treat stirring as w>0w>0 for the system.

  • Confusing a thermally insulated vessel with a system of constant internal energy. Insulation only implies q=0q=0; it does not mean ΔU=0\Delta U=0 when work is being done on the system.

  • Using the wrong sign convention for work. In this solution convention, work done on the system is taken as positive, so external stirring gives w>0w>0, not negative.

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