A point source of electromagnetic radiation has an average power output of 1500 W. The maximum value of electric field at a distance of 3 m from this source in V m -1 is

Question

A point source of electromagnetic radiation has an average power output of 1500 W. The maximum value of electric field at a distance of 3 m from this source in V m -1 is (A) 500 (B) 100 (C) (500/3) (D) (250/3)

Tardigrade Admin · Accepted Answer

Average intensity of electromagnetic waves is

I = \frac{P}{4 π r ^{2}} = \frac{1}{2} ε_{0} E_{0}^{2} c

or

E_{0} = [\frac{P}{2 π r ^{2} ε _{0} c}]^{1/2}

Substituting the given values, we get

E_{0} = [\frac{1500}{2 π ( 3 ) ^{2} \times [ ( 1/4 π \times 9 \times 1 0 ^{9} ) ] \times 3 \times 1 0 ^{8}}]^{1/2} = 100 V m^{- 1}

Q. A point source of electromagnetic radiation has an average power output of $1500 W$ . The maximum value of electric field at a distance of $3 m$ from this source in $V m^{- 1}$ is

500

100

$\frac{500}{3}$

$\frac{250}{3}$

Q. A point source of electromagnetic radiation has an average power output of 1500W. The maximum value of electric field at a distance of 3m from this source in Vm−1 is

500

100

3500​

3250​

Average intensity of electromagnetic waves is I=4πr2P​=21​ε0​E02​c or E0​=[2πr2ε0​cP​]1/2 Substituting the given values, we get E0​=[2π(3)2×[(1/4π×9×109)]×3×1081500​]1/2=100Vm−1

Q. A point source of electromagnetic radiation has an average power output of $1500 W$ . The maximum value of electric field at a distance of $3 m$ from this source in $V m^{- 1}$ is

$\frac{500}{3}$

$\frac{250}{3}$