How much power is produced if a voltage of $4 V$ is applied to a circuit with a resistance of $2 Omega$ ?

Question

1845 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2016-01-01T04:53:23

$8 J/s or 8 W$

$P = IV = I^2 R=V^2/R$

What are given:
$V=4 V$
$R = 2\Omega$

Therefore,
$P = V^2/R =(4 (kg\cdotm^2\cdot s^-3\cdotA^-1))^2/(2(kg\cdot m^2 \cdot s^-3 \cdot A^-2))=8 (kg\cdot m^2 \cdot s^-3 )=8 J/s$

For the determination of units,
$V = Ed= (F/q_0)(d) = (mad)/(q_0) => (kg *m/s^2 \cdot m)/C => (kg *m/s^2 \cdot m)/(As)$

And

$\Omega=V/A = (kg *m/s^2 \cdot m)/(A^2s)$

*Take note that the equation $P = I^2 R=V^2/R$ can be played using $P=IV$ using the different fundamental equations of electricity.

$V = Ed =(F/q_0)(d)$
$\Omega=V/A$

How much power is produced if a voltage of 4 V4 V is applied to a circuit with a resistance of 2 Omega2 Omega?