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Steam enters a turbine operating at steady state with a mass flow of 10 kg/s, a specific enthalpy of 3100 kJ/kg, and a velocity of 30 m/s. At the exit, the specific enthalpy is 2300 kJ/kg and the velocity is 45 m/s. The elevation of the inlet is 3 m higher than at the exit. Heat transfer from turbine to its surroundings occur at rate of 1.1 kJ per kg of steam flowing. Let g 9.81 m/s. Determine the power developed by the turbine, in kW.

Respuesta :

Answer:7989.86KW

Explanation:

Given data

[tex]h_1[/tex]=3100 KJ/kg

[tex]\dot{m}[/tex]=10kg/s

[tex]V_1[/tex]=30m/s

[tex]Z_1[/tex]=3m

[tex]h_2[/tex]=2300KJ/kg

[tex]V_2[/tex]=45m/s

[tex]Z_2[/tex]=0

using steady flow energy equation which is

[tex]\dot{m}[/tex][tex]\left (h_1+gZ_1+\frac{V_1^2}{g}\right )[/tex]+[tex]\dot{Q}[/tex]=[tex]\dot{m}[/tex][tex]\left (h_2+gZ_2+\frac{V_2^2}{g}\right )\+[/tex][tex]\dot{W}[/tex]

[tex]10\left (3100+\frac{9.81\times 3}{1000}+\frac{30^2}{9.81\times 1000}\right )[/tex]+[tex]\dot{Q}[/tex]=[tex]10\left (2300+\frac{9.81\times 0}{1000}+\frac{45^2}{9.81\times 1000}\right )[/tex]+[tex]\dot{W}[/tex]

[tex]10\left ( \left ( 3100-2300\right )+\frac{30^{2}-45^{2}}{2\times 9.81\times 1000}+\frac{9.82\times 3}{1000}\right )[/tex]-[tex]1.1\times 10[/tex]=[tex]\dot{W}[/tex]

[tex]\dot{W}[/tex]=7989.8673 KW

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