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Exercise · Q26

Q.State the Second Law of Thermodynamics in terms of entropy. Using this law, explain why heat never flows spontaneously from a colder body to a hotter one, even though the First Law does not itself forbid it.

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The Second Law of Thermodynamics states that for any spontaneous process, the total entropy of the universe — the system's entropy plus the surroundings' entropy — must increase: ΔStotal=ΔSsystem+ΔSsurroundings≥0\Delta S_{total} = \Delta S_{system} + \Delta S_{surroundings} \geq 0. Entropy is a measure of the number of accessible microscopic arrangements, or of how spread out/disordered a system's energy distribution is. If heat were to flow spontaneously from a colder body to a hotter one, energy would be concentrating itself into an already warmer (and hence already more energetically 'ordered', less randomly-distributed-in-space) region, at the expense of the colder body becoming even colder — this represents a decrease, not an increase, in the total entropy of the two bodies taken together, and so is strictly forbidden by the Second Law. The First Law, being only a statement about energy conservation, places no such restriction: as far as energy conservation alone is concerned, heat flowing from cold to hot would c …

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