Answer:
1184 kJ/kg
Explanation:
Given:
water pressure P= 28 bar
internal energy U= 988 kJ/kg
specific volume of water v= 0.121×10^-2 m^3/kg
Now from steam table at 28 bar pressure we can write
[tex]U= U_{f}= 987.6 kJ/Kg[/tex]
[tex]v_{f}=v=1.210\times 10^{-3}m^{^{3}}/kg[/tex]
therefore at saturated liquid we have specific enthalpy at 55 bar pressure.
that the specific enthalpy h = h at 50 bar +(55-50)/(60-50)*( h at 50 bar - h at 60 bar)
[tex]h= 1154.5 + \frac{5}{10}\times(1213-1154)[/tex]
h= 1184 kJ/kg
