Question

asked Jun 15, 2020 201k views

1 Answer

DaTebe · Answer 1 · 2020-06-20T12:32:09+0000

(a) 2.97 m

The wavelength of an electromagnetic wave is given by:

$\lambda = (c)/(f)$

where

$\lambda$ is the wavelength

c is the speed of light

f is the frequency

For the radio wave in the problem, the frequency is

$f = 101 MHz = 101 \cdot 10^6 Hz$

Therefore, the wavelength is

$\lambda = (3\cdot 10^8 m/s)/(101\cdot 10^6 Hz)=2.97 m$

(b)
$1.05\cdot 10^(-4) W/m^2$

The intensity of the radio signal is given by

I=(P)/(A)

where

P is the power of the signal

A is the area over which the signal is radiated

In this situation:

P = 50,000 W is the power

the area is a hemisphere with a radius of

r = 8.70 km = 8700 m

So the area to be considered is

$A=2\pi r^2 = 2\pi (8700 m)^2=4.76\cdot 10^8 m^2$

Therefore, the intensity of the signal is

$I=(50000 W)/(4.76\cdot 10^8 m^2)=1.05\cdot 10^(-4) W/m^2$

(c) 0.281 V/m

The intensity of an electromagnetic wave can be written as

$I=(1)/(2)c\epsilon_0 E^2$

where

c is the speed of light

$\epsilon_0$ is the vacuum permittivity

E is the amplitude of the electric field

Re-arranging the equation, we get

$E=\sqrt{(2I)/(c \epsilon_0)}$

And substituting

$I=1.05\cdot 10^(-4) W/m^2$

we find

$E=\sqrt{(2(1.05\cdot 10^(-4) W/m^2))/((3\cdot 10^8 m/s)(8.85\cdot 10^(-12) F/m))}=0.281 V/m$

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