Answer:
The work done is 1050 Btu
Solution:
As per the question:
Mass of steam, M = 15 lbm
Temperature, T = [tex]500^{\circ}F[/tex]
Temperature, T' = [tex]600^{\circ}F[/tex]
Pressure, P = 350 psia
Since, the process results in the change in volume at constant pressure.
Now, work done by the steam is given by;
W = [tex]\int_{V}^{V'} P dU[/tex]
And
U = mV
So,
W = [tex]m\int_{V}^{V'} P dV[/tex]
W = [tex]mP(V' - V)[/tex] (1)
Now, using the super heated vapor table:
At 350 psia and [tex]500^{\circ}F[/tex], V = [tex]1.5 ft^{3}/lb[/tex]
At 350 psia and [tex]600^{\circ}F[/tex], V' = [tex]1.7 ft^{3}/lb[/tex]
Now, using these values in eqn(1):
W = [tex]15\times 350(1.7 - 1.5) = 1050 Btu[/tex]
