91 As an alternative derivation of the Clausius-Clapeyron equation, begin by using the fact that g₁ 92 along the phase boundary. Then apply the thermodynamic identity for G and solve for dP/dT. =
91 As an alternative derivation of the Clausius-Clapeyron equation, begin by using the fact that g₁ 92 along the phase boundary. Then apply the thermodynamic identity for G and solve for dP/dT. =
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As an alternative derivation of the Clausius-Clapeyron equation, begin by using the fact that g₁
92 along the phase boundary. Then apply the thermodynamic identity for G and solve for
dP/dT.
="
Transcribed Image Text:91
As an alternative derivation of the Clausius-Clapeyron equation, begin by using the fact that g₁
92 along the phase boundary. Then apply the thermodynamic identity for G and solve for
dP/dT.
=
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