Answer:
v₂ = 35.57 m/s
Explanation:
Given :
Inlet steam pressure, P₁ = 1 MPa
Inlet steam temperature, T₁ = 260°C
Inlet velocity of steam, V₁ = 30 m/s
Outlet steam pressure, P₂ = 0.3 MPa
Outlet steam temperature, T₂ = 160°C
Now,
From steam table at pressure 1 Mpa and temperature 260°C, enthalpy, h₁ = 2964.8 kJ/kg
From steam table at pressure 0.3 Mpa and temperature 160°C, enthalpy, h₂ = 2782.14 kJ/kg
Therefore, for an open system from 1st law of thermodynamics, we get
Energy in = Energy out
E₁ = E₂
[tex]\left ( h_{1}+\frac{v_{1}^{2}}{2} \right )[/tex] = [tex]\left ( h_{2}+\frac{v_{2}^{2}}{2} \right )[/tex]
[tex]v_{2}^{2}= 2\left [ h_{1}-h_{2}+\frac{v_{1}^{2}}{2} \right ][/tex]
[tex]v_{2}^{2}= 2\left [ 2964.8-2782.14+\frac{30^{2}}{2} \right ][/tex]
[tex]v_{2}^{2}=[/tex]2 X 632.66
v₂ = 35.57 m/s
Therefore, outlet velocity, v₂ = 35.57 m/s
