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An AC power generator produces 50 A (rms) at 3600 V. The voltage is stepped up to 100 000 V by an ideal transformer and the energy is transmitted through a long-distance power line which has a resistance
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An AC power generator produces 50 A (rms) at 3600 V. The voltage is stepped up to 100 000 V by an ideal transformer and the energy is transmitted through a long-distance power line which has a resistance of 100 ohms. What percentage of the power delivered by the generator is dissipated as heat in the long-distance power line?

User Maycon Mesquita
by
7.6k points

1 Answer

4 votes

Given:


I_(rms) = 50 A

voltage, V = 3600V

step-up voltage, V' = 100000 V

Resistance of line,
R = 100\ohm

Solution:

To calculate % heat loss in long distance power line:

Power produced by AC generator, P =
50* 3600 W

P = 180000 W = 180 kW

At step-up voltage, V = 100000V or 100 kV

current, I =
(P)/(V')

I =
(1800000)/(100000)

I = 1.8 A

Power line voltage drop is given by:


V_(drop) = I* R


V_(drop) = 1.8* 100


V_(drop) = 180 V

Power dissipated in long transmission line
P_(dissipated) = V_(drop)* I

Power dissipated in long transmission line
P_(dissipated) = 180* 1.8 = 324 W

% Heat loss in power line,
P_(loss) = (P_(dissipated))/(P)* 100

% Heat loss in power line,
P_(loss) = (324)/(180000)* 100


P_(loss) = 0.18%

User Bradimus
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8.0k points
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