Skip to content
Question of 35

Q.Give the statement of first law of thermodynamics. Define isothermal process and give two examples of it. Derive the formula for work in isothermal process. OR Define adiabatic process and give two examples of it. Derive the formula for work in adiabatic process.

Rajasthan RbseRajasthan Board Senior Secondary Part-I Examination 2017Subjective· 5mImportance★★★★★
0% · 0/35 Questions
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

First law: dQ = dU + dW. In an isothermal process (T constant, dU = 0), integrating W = ∫P dV with PV = nRT gives W = nRT ln(V2/V1). (This solves the primary question; the OR alternative on the adiabatic process is not separately required.)

First Law of Thermodynamics: When heat dQ is supplied to a thermodynamic system, part of it increases the internal energy of the system (dU) and the rest is used by the system to do external work (dW):

dQ = dU + dW

This is simply the principle of conservation of energy applied to thermal processes — heat is a form of energy, and energy supplied to a system cannot be destroyed; it can only change the system's internal energy or leave as work done on the surroundings.

Isothermal Process: A process in which the temperature of the system remains constant throughout (dT = 0), which requires the system to be in good thermal contact with a large heat reservoir so that any heat exchanged doesn't change its temperature. Two examples: (i) melting of ice into water at 0°C at constant temperature (though this also involves latent heat rather than gas expansion);

(ii) the slow (quasi-static) expansion or compression of a gas in a cylinder that is kept immersed in a large constant-temperature water bath, so heat flows in/out slowly enough to keep the gas at the bath's temperature throughout.

Work done in an isothermal process: Since T is constant, internal energy of an ideal gas (which depends only on T) does not change: dU = 0. So by the first law, all the heat supplied goes entirely into work: dQ = dW.

For n moles of an ideal gas expanding quasi-statically from volume V1 to V2 at constant T: …

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.