A radiation is emitted by a $1000 W$ bulb, and it generates an electric field and magnetic field at $P$ , placed at a distance of $2 m$ . The efficiency of the bulb is $1.25 %$ . The value of the peak electric field at $P$ is $x \times 10^{- 1} V / m$ . Value of $x$ is __________. (Rounded-off to the nearest integer)

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Solution

Step 1: Given data
Power, $P = 1000 W$
Distance, $r = 2 m$
Speed of light, $c = 3 \times 10^{8} m s^{- 1}$
The permittivity of free space, $ε_{0} = 8.85 \times 10^{- 12} C^{2} N^{- 1} m^{- 2}$
Step 2: Find peak electric field
Let $E_{0}$ be the peak electric field.
Let the Intensity of electromagnetic wave be $I$
The intensity of electromagnetic wave is given by,
$I = \frac{1}{2} c ε_{0} E_{0}^{2}$
It is also given by
$I = \frac{P}{4 {πr}^{2}} \times$ efficiency
On equating both,
$\frac{1}{2} c ε_{0} E_{0}^{2} = \frac{P}{4 {πr}^{2}} \times$ efficiency
$\frac{1}{2} \times 4 π ε_{0} \times c \times E_{0}^{2} = \frac{P}{r^{2}} \times$ efficiency
The value of $4 π ε_{0}$ is,
$4 {πε}_{0} = 4 \times 3.14 \times 8.85 \times 10^{- 12} 4 {πε}_{0} = \frac{1}{9 \times 10^{9}}$
Putting values in above equation, we get
$\begin{array}{rcl} \frac{1}{2} \times 3 \times 10^{8} \times \frac{E_{0}^{2}}{9 \times 10^{9}} & = & \frac{1000 \times 1.25}{{(2)}^{2} \times 100} \\ E_{0}^{2} & = & \frac{60 \times 1000 \times 1.25}{400} \\ E_{0}^{2} & = & 125 \times \frac{3}{2} \\ E_{0}^{2} & = & \frac{375}{2} \\ E_{0} & = & 13.69 \\ E_{0} & \approx & 137 \times 10^{- 1} V m^{- 1} \\ x & = & 137 \end{array}$
[ $c = 3 \times 10^{8}$ is speed of the light, $ε_{0}$ is permittivity]
Hence, the value of $x$ is $137$ .

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A radiation is emitted by a 1000W bulb, and it generates an electric field and magnetic field at P, placed at a distance of 2m. The efficiency of the bulb is 1.25%. The value of the peak electric field at P is x×10-1V/m. Value of x is __________. (Rounded-off to the nearest integer)