What is the mathematical equation showing that the quantity of heat absorbed by vaporizing is the same as the quantity of heat released when the vapor condenses?

1 Answer
Truong-Son N.
Jun 9, 2017

...conservation of energy...?

Phase equilibria, in particular, are easily reversible in a thermodynamically-closed system... Thus, the process forwards requires the same amount of energy input as the energy the process backwards gives back.

At constant pressure:

#q_(vap) = nDeltabarH_(vap)#,

#"X"(l) stackrel(Delta" ")(->) "X"(g)#

where #q# is the heat flow in #"J"#, #n# is of course mols, and #DeltabarH_(vap)# is the molar enthalpy in #"J/mol"#.

By definition, we must also have:

#q_(cond) = nDeltabarH_(cond)#

#"X"(g) stackrel(Delta" ")(->) "X"(l)#

We know that #DeltabarH# changes sign for the process of the opposite direction. Hence for any reversible process, #DeltabarH_(cond) = -DeltabarH_(vap)#...

#=> color(blue)(q_(cond) = -nDeltabarH_(vap) = -q_(vap))#

Thus the heat flow that goes into the system for a vaporization process is equal in magnitude to the heat flow out of a system for a condensation process.

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