Which of the following sets of thermodynamic conditions accurately describes the spontaneous free ex — Thermodynamics and Thermochemistry Chemistry Question
Question
Which of the following sets of thermodynamic conditions accurately describes the spontaneous free expansion of an ideal gas inside an insulated (adiabatic) container?
Answer: A,B,C
💡 Solution & Explanation
In free expansion, the gas expands strictly against a vacuum, meaning external pressure $P_{ext} = 0$. As a result, work done $w = -P_{ext}\Delta V = 0$. The process happens in an insulated container, enforcing adiabatic conditions where $q = 0$. According to the First Law ($\Delta U = q + w$), $\Delta U = 0$. Finally, for ideal gases $\Delta U = nC_v\Delta T$, which dictates $\Delta T = 0$ (no temperature change).
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