An electric current of 2 amperes flows in a heating coil of resistance 50 ohms for 3 minutes 20 seconds. Determine the heat produced

0.5kJ

8.0kJ

20.0kJ

40.0kJ

Correct answer is D

Heat energy = Elect. energy

heat energy= I²RT

= 2 X 2 X 50 X 200

= 40000J

to convert to kJ, divide J by 1000

hence, \(\frac{40000}{1000}\) = 40kJ

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