An internal combustion engine uses fuel, of energy content 44.4 MJ/kg, at a rate of 5kg/h. If the efficiency is 28%, determine the power output and the rate of heat rejection?

Question

Physics

Anahi Holmes

21 March, 09:20

An internal combustion engine uses fuel, of energy content 44.4 MJ/kg, at a rate of 5kg/h. If the efficiency is 28%, determine the power output and the rate of heat rejection?

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Answers (1)

Know the Answer?

Allen Carson · Answer 1

The formula for efficiency is this one:

Efficiency = Power Output / Power Input

Power Input is just equal to Rate of Energy input

= 44.4 MJ/kg * 5 kg/h

= 222 MJ/h

Take note that 1 hour = 3600seconds

= 222 MJ/h

= 222 MJ/3600s

= 0.061667 MW

J / S = Watts

Power input = 0.061667 MW = 61 667 W

Going back to formula:

Efficiency = Power Output / Power Input

28% = Power Output / 61667

Power Output = 0.28 * 61667

Power Output = 17266.76 W

Power Output ≈ 17 267 W

The power output is approximately 17, 267 W.

Rate of heat rejection = Power Input - Power Output

Rate of heat rejection = 61667 - 17267

Rate of heat rejection = 44400 W.

So the heat of rejection is 44,400 W.