Answer:
Exit velocity [tex]V_2=1472.2[/tex] m/s.
Explanation:
Given:
At inlet:
[tex]P_1=100 bar,T_=600°C,V_1=35m/s[/tex]
Properties of steam at 100 bar and 600°C
[tex]h_1=3624.7\frac{KJ}{Kg}[/tex]
At exit:Lets take exit velocity [tex] V_2[/tex]
We know that if we know only one property inside the dome then we will find the other property by using steam property table.
Given that dryness or quality of steam at the exit of nozzle is 0.85 and pressure P=80 bar.So from steam table we can find the other properties.
Properties of saturated steam at 80 bar
[tex]h_f= 1316.61\frac{KJ}{Kg} ,h_g= 2757.8\frac{KJ}{Kg}[/tex]
So the enthalpy of steam at the exit of turbine
[tex]h_2=h_f+x(h_g-h_f)\frac{KJ}{Kg}[/tex]
[tex]h_2=1316.61+0.85(2757.8-1316.61)\frac{KJ}{Kg}[/tex]
[tex]h_2=2541.62\frac{KJ}{Kg}[/tex]
Now from first law for open system
[tex]h_1+\dfrac{V_1^2}{2}+Q=h_2+\dfrac{V_2^2}{2}+w[/tex]
In the case of adiabatic nozzle Q=0,W=0
[tex]3624.7+\dfrac{35^2}{2000}+0=2541.62+\dfrac{(V_2)^2}{2000}+0[/tex]
[tex]V_2=1472.2[/tex] m/s
So Exit velocity [tex]V_2=1472.2[/tex] m/s.
