Q.Explain reversible and irreversible processes. Describe the working of Carnot engine obtain an expression for the efficiency.
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Start your 14-day free trial to unlock the full solution →Reversible processes can be exactly retraced through equilibrium states (ideal); irreversible ones cannot (all real processes). A Carnot engine runs a reversible cycle of two isothermals and two adiabatics; its efficiency η = 1 - T₂/T₁.
Reversible process: A process that can be made to proceed in the reverse direction through exactly the same series of equilibrium (intermediate) states as the forward process, so that at the end both the system and the surroundings are restored to their original states with no net change. It must be carried out infinitely slowly (quasi-statically) and be free of dissipative effects (like friction). A reversible process is an idealisation — no real process is perfectly reversible.
Irreversible process: A process that cannot be retraced in the reverse direction through the same equilibrium states. After it occurs, the system and surroundings cannot both be restored to their original states without some net change. All real, natural processes are irreversible (e.g. free expansion of a gas, conduction of heat from a hot to a cold body, friction). Irreversibility arises mainly from (i) dissipative forces such as friction and (ii) the process being carried out at a finite (non-infinitesimal) rate.
Carnot engine: A Carnot engine is an ideal reversible heat engine that operates between a hot reservoir (source) at temperature T₁ and a cold reservoir (sink) at temperature T₂ (T₁ > T₂), using an ideal gas as the working substance. It works in a cycle of four reversible steps (the Carnot cycle):
- Isothermal expansion at T₁: the gas absorbs heat Q₁ from the source and does work while its temperature stays constant at T₁.
- Adiabatic expansion: the gas expands further with no heat exchange; its temperature falls from T₁ to T₂.
- Isothermal compression at T₂: the gas rejects heat Q₂ to the sink at constant temperature T₂.
- Adiabatic compression: the gas is compressed with no heat exchange; its temperature rises from T₂ back to T₁, completing the cycle. …
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