Energy Efficiency Lecture Notes and Lab

A device is efficient when most of its input energy is converted into useful output (the primary purpose) energy.

Some transformations are more efficient that others – remember that a light bulb converts only 5% of electrical energy to light energy, while a gas furnace converts 80% of chemical energy to thermal energy.

Review of formula: efficiency = useful energy outputX 100

energy input

LAB: Conversion of electrical energy into thermal energy

How much of the input energy is actually used to boil the water?

Question: How do we calculate the energy efficiency of a device used to heat water?

Materials:kettle, 250 ml of water, thermometer, stopwatch, insulated glass jar

Procedure:Record the temperature of the water

Place thermometer in the kettle

Heat water to 90o C

Count the seconds to reach 90oC and record

Remove water from the heat and stir for 1 minute

Record the highest temperature reached in the water

Calculate efficiency

Notes:

Energy is measured in joules

First, we observe the amount of input energy from the kettle entering the water

The formula for input energy is:

Energy (joules) = power (watts) X time (seconds)

Power is measured by the number of watts (look on the bottom of any electrical device for this number); in this case, the kettle puts out ______watts of electrical power.

  • The original temperature of the water is ______oC
  • The water reached 90oC in ______seconds

Therefore, the power, or input energy, from the kettle during this experiment was:

______watts x_____ sec. = ______ joules

Now, let’s calculate the efficiency of the kettle to convert input energy to output energy:

The highest water temperature reached was ______oC.

The original temperature of the water was ______oC, so the temperature gain

was

_____ (highest) - _____ (original) = _____oC

How much thermal energy was absorbed by the water?

The formula to calculate thermal efficiency is:

Thermal energy = volume of water x temperature change x 4.2 joules/ml – o C*

Thermal energy = 250 ml x_____ x 4.2 = ______joules

*The 4.2 figure is a constant in this equation, just like pi is a constant value in calculating circumference of a circle

Now, you complete the efficiency equation:

efficiency = useful energy output X 100

energy input

Useful energy input = ______joules

Energy input = ______joules

(______divided by ______) = . ______X 100 = ______

Therefore, the energy efficiency rating of the kettle is ____, or the water isabsorbing only _____% of the input energy.

How does this compare with a light bulb or gas furnace?

______

Was all of the electrical energy supplied by the kettle transformed into thermal energy in the water? Where else do you think the energy went?

______