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Relation between enthalpy and internal energy for chemical reaction at constant volume

I'm very confused regarding this... When a reaction occurs at constant volume they equate enthalpy with internal energy which I think is wrong because according to the equation:-

$dH = dU +d (PV)

At constant volume:-

$dH = dU + V*dP$

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see in question no. 7 It is given:- dH=dU please explain this...