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Question

What is the significance of the P-V relationship in an adiabatic process for an ideal gas?

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Explanation

**Heat capacity** at constant pressure C_p and volume C_v, C_p = C_v + R per mole, for solids Dulong-Petit C_v≈3R≈25 J/mol·K. Specific heat and latent heat govern temperature changes and phase transitions, Q = m c ΔT for heating, Q = m L for melting/boiling at constant T. In an adiabatic process, P V^γ = constant (where γ = (C_p)/(C_v) ) reflects the trade-off between pressure and volume without heat exchange, linking work done to internal energy changes. Using first law ΔU = Q - W, W = ∫ P dV, isobaric W = P ΔV, isothermal W = n R T ln(V₂/V₁), adiabatic P

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