Answer:
The heat gain of the room due to higher efficiency is 2.84 kW.
Explanation:
Given that,
Output power of shaft = 75 hp
Efficiency = 91%
High efficiency = 95.4%
We need to calculate the electric input given to motor
Using formula of efficiency
[tex]\eta=\dfrac{Work\ Output}{Work\ input}[/tex]
[tex]Work\ Input =\dfrac{Work\ output}{\eta}[/tex]
[tex]Work\ Input =\dfrac{75\times746}{0.91}[/tex]
[tex]Work\ Input =61483.51\ W[/tex]
[tex]Work\ Input = 61.48 kW[/tex]
We need to calculate the electric input
For, heigh efficiency
[tex]Work\ Input_{inc} =\dfrac{75\times746}{0.954}[/tex]
[tex]Work\ Input_{int} =58647.7\ W[/tex]
[tex]Work\ Input_{int} = 58.64\ kW[/tex]
The reduction of the heat gain of the room due to higher efficiency is
[tex]Q=Work\ Input-Work\ Input_{int} [/tex]
Put the value into the formula
[tex]Q=61.48 -58.64[/tex]
[tex]Q=2.84\ kW[/tex]
Hence, The heat gain of the room due to higher efficiency is 2.84 kW.
