Exercises - Chapter 8 Electromagnetic Waves PDF

Summary

These exercises cover concepts related to electromagnetic waves, including calculations involving capacitance, displacement current, and magnetic fields. Emphasis is placed on solving problems in a physics context.

Full Transcript

Exercises
Question 8.1:
Figure 8.5 shows a capacitor made of two circular plates each of radius 12 cm, and
separated by 5.0 cm. The capacitor is being charged by an external source (not shown in
the figure). The charging current is constant and equal to 0.15 A.
(a) Calculate the capacitance and the rate of charge of potential difference between the
plates.
(b) Obtain the displacement current across the plates.
(c) Is Kirchhoff’s first rule (junction rule) valid at each plate of the capacitor? Explain.

Answer
Radius of each circular plate, r = 12 cm = 0.12 m
Distance between the plates, d = 5 cm = 0.05 m
Charging current, I = 0.15 A

Permittivity of free space, = 8.85 × 10−12 C2 N−1 m−2

(a) Capacitance between the two plates is given by the relation,

C
Where,

A = Area of each plate

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Charge on each plate, q = CV
Where,
V = Potential difference across the plates
Differentiation on both sides with respect to time (t) gives:

Therefore, the change in potential difference between the plates is 1.87 ×10 9 V/s.

(b) The displacement current across the plates is the same as the conduction current.
Hence, the displacement current, id is 0.15 A.

(c) Yes
Kirchhoff’s first rule is valid at each plate of the capacitor provided that we take the sum of
conduction and displacement for current.

Question 8.2:
A parallel plate capacitor (Fig. 8.6) made of circular plates each of radius R = 6.0 cm has a
capacitance C = 100 pF. The capacitor is connected to a 230 V ac supply with a (angular)
frequency of 300 rad s−1.
(a) What is the rms value of the conduction current?
(b) Is the conduction current equal to the displacement current?
(c) Determine the amplitude of B at a point 3.0 cm from the axis between the plates.

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Answer
Radius of each circular plate, R = 6.0 cm = 0.06 m
Capacitance of a parallel plate capacitor, C = 100 pF = 100 × 10−12 F
Supply voltage, V = 230 V
Angular frequency, ω = 300 rad s−1

(a) Rms value of conduction current, I
Where,
XC = Capacitive reactance

I = V × ωC
= 230 × 300 × 100 × 10−12
= 6.9 × 10−6 A

= 6.9 µA
Hence, the rms value of conduction current is 6.9 µA.
(b) Yes, conduction current is equal to displacement current.
(c) Magnetic field is given as:

B Where,

µ0 = Free space permeability

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I0 = Maximum value of current =
r = Distance between the plates from the axis = 3.0 cm = 0.03 m B

= 1.63 × 10−11 T
Hence, the magnetic field at that point is 1.63 × 10−11 T.

Question 8.3:
What physical quantity is the same for X-rays of wavelength 10−10 m, red light of wavelength

6800 Å and radiowaves of wavelength 500 m?
Answer
The speed of light (3 × 108 m/s) in a vacuum is the same for all wavelengths. It is independent
of the wavelength in the vacuum.

Question 8.4:
A plane electromagnetic wave travels in vacuum along z-direction. What can you say about
the directions of its electric and magnetic field vectors? If the frequency of the wave is 30
MHz, what is its wavelength?
Answer
The electromagnetic wave travels in a vacuum along the z-direction. The electric field (E) and
the magnetic field (H) are in the x-y plane. They are mutually perpendicular. Frequency of
the wave, ν = 30 MHz = 30 × 106 s−1

Speed of light in a vacuum, c = 3 × 108 m/s Wavelength
of a wave is given as:

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Question 8.5:
A radio can tune in to any station in the 7.5 MHz to 12 MHz band. What is the corresponding
wavelength band?
Answer
A radio can tune to minimum frequency, ν1 = 7.5 MHz= 7.5 × 106 Hz

Maximum frequency, ν2 = 12 MHz = 12 × 106 Hz

Speed of light, c = 3 × 108 m/s
Corresponding wavelength for ν1 can be calculated as:

Corresponding wavelength for ν2 can be calculated as:

Thus, the wavelength band of the radio is 40 m to 25 m.

Question 8.6:
A charged particle oscillates about its mean equilibrium position with a frequency of 10 9 Hz.

What is the frequency of the electromagnetic waves produced by the oscillator?
Answer
The frequency of an electromagnetic wave produced by the oscillator is the same as that of a
charged particle oscillating about its mean position i.e., 109 Hz.

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Question 8.7:
The amplitude of the magnetic field part of a harmonic electromagnetic wave in vacuum is B0
= 510 nT. What is the amplitude of the electric field part of the wave?

Answer
Amplitude of magnetic field of an electromagnetic wave in a vacuum,
B0 = 510 nT = 510 × 10−9 T

Speed of light in a vacuum, c = 3 × 108 m/s
Amplitude of electric field of the electromagnetic wave is given by the relation,

E = cB0 = 3 × 108 × 510 × 10−9 = 153 N/C
Therefore, the electric field part of the wave is 153 N/C.

Question 8.8:
Suppose that the electric field amplitude of an electromagnetic wave is E0 = 120 N/C and that
its frequency is ν = 50.0 MHz. (a) Determine, B0, ω, k, and λ. (b) Find expressions for E and

B.
Answer
Electric field amplitude, E0 = 120 N/C
Frequency of source, ν = 50.0 MHz = 50 × 106 Hz
Speed of light, c = 3 × 108 m/s

(a) Magnitude of magnetic field strength is given as:

Angular frequency of source is given as:
ω = 2πν = 2π ×
50 × 106

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= 3.14 × 108 rad/s
Propagation constant is given as:

Wavelength of wave is given as:

(b) Suppose the wave is propagating in the positive x direction. Then, the electric field vector
will be in the positive y direction and the magnetic field vector will be in the positive z
direction. This is because all three vectors are mutually perpendicular.
Equation of electric field vector is given as:

And, magnetic field vector is given as:

Question 8.9:
The terminology of different parts of the electromagnetic spectrum is given in the text. Use
the formula E = hν (for energy of a quantum of radiation: photon) and obtain the photon
energy in units of eV for different parts of the electromagnetic spectrum. In what way are the
different scales of photon energies that you obtain related to the sources of electromagnetic
radiation?
Answer

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Energy of a photon is given as:

Where,
h = Planck’s constant = 6.6 × 10−34 Js
c = Speed of light = 3 × 108 m/s λ =
Wavelength of radiation

The given table lists the photon energies for different parts of an electromagnetic spectrum
for differentλ.

λ 103 1 10−3 10−6 10−8 10−10 10−12
(m)

12.375 × 12.375 × 12.375 × 12.375 × 12.375 × 12.375 × 12.375 ×
E
10−10 10−7 10−4 10−1 101 103 105
(eV)

The photon energies for the different parts of the spectrum of a source indicate the spacing
of the relevant energy levels of the source.

Question 8.10:
In a plane electromagnetic wave, the electric field oscillates sinusoidally at a frequency of
2.0 × 1010 Hz and amplitude 48 V m−1.

(a) What is the wavelength of the wave?
(b) What is the amplitude of the oscillating magnetic field?
(c) Show that the average energy density of the E field equals the average energy density
of the B field. [c = 3 × 108 m s−1.]

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Answer
Frequency of the electromagnetic wave, ν = 2.0 × 1010 Hz

Electric field amplitude, E0 = 48 V m−1

Speed of light, c = 3 × 108 m/s
(a) Wavelength of a wave is given as:

(b) Magnetic field strength is given as:

(c) Energy density of the electric field is given as:

And, energy density of the magnetic field is given as:

Where,
0 = Permittivity of free space
µ0 = Permeability of free space
We have the relation connecting E and B as:
E = cB … (1)
Where,

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 … (2)
Putting equation (2) in equation (1), we get

Squaring both sides, we get

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