An electrically powered pump is used to pull water out of a well. In the course of an afternoon, the pump does 8.3 kJ of work lifting water out of a well?

An electrically powered pump is used to pull water out of a well. In the
course of an afternoon, the pump does 8.3 kJ of work lifting water out of a well.
It also heats up, and releases 300 J of heat to the environment before returning to
its original temperature. If there was no net change in the energy of the pump,
how much electrical energy was required?

2 Answers
Alexander L.
May 9, 2016

8.6kJ

Explanation:

In thermodynamics, you have the famous equation;
Q=U+W
Which is; "Energy supply"="Internal energy"+"Work done by the system"

The system heats up hence U=300J
Work is done by the system hence W=8.3kJ

Energy supply, Q=8.6kJ

A08
May 9, 2016

8.6kJ

Explanation:

Mechanical Work done by the pump=8.3kJ
Heat generated in the pump, due to internal resistance both electrical and friction=300J
Also given that change in energy of pump DeltaE=0

:. Total electrical energy was required="Mechnical work done"+"Heat generated and lost"+Delta E

Inserting giving values we get

Total electrical energy was required=8.3+0.3+0=8.6kJ

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