Q.State second law of thermodynamics. How is heat engine different from a refrigerator?
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Start your 14-day free trial to unlock the full solution →The second law forbids spontaneous heat flow from cold to hot and forbids 100%-efficient heat-to-work conversion; a heat engine takes heat from hot and does work, while a refrigerator uses work to move heat from cold to hot — the same cycle run in opposite directions.
Second law of thermodynamics — two equivalent statements:
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Clausius statement: It is impossible for a self-acting machine, unaided by any external agency, to transfer heat from a body at a lower temperature to a body at a higher temperature. (Heat does not flow spontaneously from cold to hot; doing so always requires external work to be done ON the system.)
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Kelvin-Planck statement: It is impossible to construct a device that, operating in a cycle, produces no effect other than the absorption of heat from a single reservoir and its complete conversion into an equivalent amount of work. (No heat engine can be 100% efficient — some heat must always be rejected to a sink.)
These two statements can be shown to be logically equivalent to each other.
Heat engine vs. refrigerator:
A heat engine is a device that converts heat into mechanical work, operating in a repeating cycle. It absorbs heat from a hot reservoir (source) at temperature , converts part of it into useful work W, and rejects the remaining heat to a cold reservoir (sink) at temperature . Its efficiency is (never 100%, by the Kelvin-Planck statement).
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