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In a hydroelectric power plant, 65 m3 /s of water flows from an elevation of 90-m to a turbine-generator, where electricity is generated. if the overall efficiency of the turbine-generator is 84%, determine the electric output of this plant, in mw. neglect all frictional losses, assume that the velocity of the inlet and outlet are small, and assume that both sides of the power plant are exposed to atmospheric pressure.

Respuesta :

The electric output of the plant is 48.19 MW

First we need to calculate the water power, it is given by the formula

WP=ρQgh

Here, ρ=1000 kg/m3 is density of water,Q is the flow rate, g is the gravity, and h is the water head

Therefore, WP=1000*65*9.81*90=57388500 W=57.38 MW

Now the overall efficiency of the hydroelectric power plant is given as

η=[tex]\frac{electric power}{water power}[/tex]

Plugging the values in the above equation

0.84=EP/57.38

EP=48.19 MW

Therefore, the electric output of the plant is 48.19 MW.

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