Transmission wires loss (1 Viewer)

superstar12 · Mar 4, 2015

Since P=VI and V=IR, we get

Power loss = I^2R

and find that a low current results in less power loss. Thus, electricity is stepped up to high voltages since according to P=VI, a high voltage results in a low current. But, if I=V/R is substituted into the P=VI equation, giving us,

Power loss = (V^2)/R

This implies that a high voltage results in a greater power loss, as opposed to what we see in both the previous equation and in practice. Why is this?

anomalousdecay · Mar 5, 2015

No no no.

$P _{loss} = \frac{V _{drop} ^2}{R}$

This is not implying that the voltage source is responsible for power losses. Simply, the voltage drop across the wires is dependent on the current through them, $V_{drop} = I R$ .

If you really want the overall power delivered by the circuit, we can use:

$$Power delivered$ = V _{source} I _{source} - \frac{V _{drop} ^2}{R _{Thevenin}} = V _{source} I _{source} - I_{delivered} ^ 2 R _{Thevenin}$

Thevenin resistance is just the equivalent resistance as measured from that point of the whole circuit.

So what can be deduced here? Well if the current increases, so does the voltage drop across the transmission lines. Hence, the power delivered can be maximised with using a lower current across the transmission lines.

Fizzy_Cyst · Mar 5, 2015

Exactly what anamolous said.

Less current = lower voltage drop across the wires = less power loss

From P = V^2/R; V is the voltage drop not the transmitting voltage

Transmission wires loss (1 Viewer)

superstar12

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anomalousdecay

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