For a Chemical Process at constant temperature and pressure, ΔH is Equal to
(q/t )(rev)
∆S-T∆G
∆U+P∆V
∆U-P∆V
Under which of the following conditions is the relation, Δ H = Δ U + PΔ V valid for a closed system?
At constant pressure (∆P=0)
Than, Enthalpy
∆H=∆U+∆(PV)
∆H=∆U+P∆V+V∆P; But as (∆P=0)
∆H=∆U+P∆V
But if the Volume is constant (∆V=0)
Than the equation becomes
∆H=∆U+V∆P
What does this Equation implies and what is it's application?