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 →Second law: heat cannot be fully converted into work (Kelvin-Planck), and heat cannot flow spontaneously from cold to hot (Clausius). A heat engine converts heat into work (hot -> work + cold); a refrigerator does the reverse, using work to move heat from cold to hot.
Second law of thermodynamics:
The second law can be stated in two equivalent ways:
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Kelvin-Planck statement: It is impossible to construct an engine that, working in a cycle, takes heat from a single reservoir (source) and converts all of it completely into work without rejecting any heat to a sink. That is, no heat engine can be 100% efficient.
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Clausius statement: It is impossible for heat to flow on its own (spontaneously) from a colder body to a hotter body. Heat can be moved from a cold body to a hot body only by doing external work (as in a refrigerator).
Heat engine:
A heat engine is a device that converts heat energy into mechanical work while working in a cycle. It absorbs heat Q1 from a hot source at temperature T1, converts a part of it into useful work W, and rejects the remaining heat Q2 to a cold sink at temperature T2. By conservation of energy, W = Q1 - Q2, and its efficiency is eta = W/Q1 = 1 - Q2/Q1.
Refrigerator:
A refrigerator is a heat engine working in reverse. It absorbs heat Q2 from a cold body (inside the fridge, at low temperature T2), has external work W done on it (by the compressor), and rejects a larger amount of heat Q1 = Q2 + W to the hotter surroundings (at temperature T1).
How a heat engine differs from a refrigerator:
- Direction of heat flow: In a heat engine, heat flows naturally from hot to cold. In a refrigerator, heat is forced from cold to hot.
- Role of work: A heat engine produces work as output. A refrigerator requires work as input. …
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