A system undergoing a power cycle develops a steady power output of 0.3 kW while receiving energy input by heat transfer at a rate of 2400 Btu/h. Determine the thermal efficiency and the total amount of energy developed by work, kW · h, for 1 full year of operation.

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CarliReifsteck CarliReifsteck · Answer 1 · 2020-02-21T08:55:53+01:00

Answer:

The thermal efficiency is 43%.

The total amount of energy developed by work is 397 kW in one year.

Explanation:

Given that,

Power output = 0.3 kW

Heat energy = 2400 Btu/h = 0.703 kW

We need to calculate the thermal efficiency

Using formula of efficiency

[tex]\eta=\dfrac{out-put}{in-put}[/tex]

Put the value into the formula

[tex]\eta=\dfrac{0.3}{0.703}[/tex]

[tex]\eta=0.43\times100[/tex]

[tex]\eta=43\%[/tex]

The thermal efficiency is 43%.

(b). We need to calculate the total amount of energy

Using formula of energy

[tex]E=0.43\times0.703\times60\times60\times365[/tex]

[tex]E=397209.06\ J[/tex]

[tex]E=397\ kW[/tex]

Hence, The thermal efficiency is 43%.

The total amount of energy developed by work is 397 kW in one year.