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Q.What is enthalpy? Derive the relationship between ΔH and ΔU.

Nagaland NbseNagaland Board of School Education (Class XI) 2023Subjective· 3mImportance★★★★★
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Enthalpy H=U+PVH = U + PV; at constant pressure this gives ΔH=ΔU+ΔngRT\Delta H = \Delta U + \Delta n_g RT for gas-phase reactions.

Enthalpy is a state function defined as:

H=U+PVH = U + PV

where UU is internal energy, PP is pressure and VV is volume. It represents the total heat content of a system at constant pressure.

Derivation of the relationship between ΔH and ΔU:

For a process at constant pressure, taking the change:

ΔH=ΔU+Δ(PV)=ΔU+PΔV(since P is constant)\Delta H = \Delta U + \Delta(PV) = \Delta U + P\Delta V \quad (\text{since } P \text{ is constant})

From the first law of thermodynamics, ΔU=q+w\Delta U = q + w; for expansion work at constant pressure, w=−PΔVw = -P\Delta V, so qP=ΔU+PΔVq_P = \Delta U + P\Delta V. Comparing, qP=ΔHq_P = \Delta H — heat exchanged at constant pressure equals the enthalpy change.

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