Answer:
1542.9 m/s
Explanation:
The table of thermodynamic properties of steam (Steam Table) is required to solve this question. Using steam table:
At p = 6000 kPa and T = 800°C, then entropy [tex](s_{1})[/tex] = 7.6554 kJ/(kg*K), internal energy [tex](u_{1})[/tex] = 3641.2 kJ/kg, and [tex](v_{1})[/tex] = 0.08159 m^3/kg. Thus:
[tex]h_{1} = u_{1} + p_{1}v_{1}[/tex] = 3641.2 + 6000*0.08159 = 3641.2 + 489.54 = 4130.74 kJ/kg
For condensation of steam to occur, [tex]s_{2} = s_{g} = s_{1}[/tex]
Thus, [tex]p_{2} = 42 kPa[/tex], [tex]T_{2}[/tex] = 77°C, [tex]h_{2}[/tex] = 2638.8 kJ/kg
If we assume that steam is a perfect gas, we have:
[tex]\frac{p}{p_{1}} = \frac{42}{6000} = 0.007[/tex], [tex]M_{e} =3.7794[/tex], [tex]T_{e} = 273 + 600 = 873K[/tex]
[tex]T_{2} = 873(0.3182) = 277.79 K[/tex]
[tex]v_{2} = 3.7794\sqrt{1.3(461.5)277.79} = 1542.9[/tex]
