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Q.Define electric energy and power. Where does the power come from? Equation P = V²/R has an important application to power transmission. How can power loss be minimised in the transmission cables connecting the power stations to homes and factories.

Himachal HpboseHPBOSE Plus Two Board 2026Subjective· 3mImportance★★★★★
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Electric power comes from the EMF source; since loss in a cable is I2RI^2R, and I=P/VI=P/V, raising the transmission voltage sharply cuts the power lost as heat.

Electric energy and power: Electric energy is the work done in moving charge through a potential difference: W=qV=VItW = qV = VIt. Electric POWER is the rate at which this work is done:

P=Wt=VI=I2R=V2RP = \frac{W}{t} = VI = I^2R = \frac{V^2}{R}

Where the power comes from: The energy delivered to a circuit originates from the source of EMF (a battery, generator, or power-station alternator), which converts some other form of energy (chemical, mechanical/kinetic in a turbine, etc.) into electrical energy, driving the current against the circuit's resistance.

Application of P=V2/RP=V^2/R to power transmission: Power stations must deliver a fixed amount of power PP to consumers through transmission cables that have some resistance RR. The power actually LOST as heat in the cable is Ploss=I2RP_{loss} = I^2R, where II is the current flowing through the cable. Since P=VI⇒I=P/VP = VI \Rightarrow I = P/V, we can write:

Ploss=I2R=(PV)2R=P2RV2P_{loss} = I^2R = \left(\frac{P}{V}\right)^2 R = \frac{P^2R}{V^2}

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