Exams › JEE Main › Physics

A microwave source at rest emits radiation at a frequency of 10 GHz. An observer moves directly toward the source at half the speed of light. What frequency does the moving observer measure? (c = 3 × 10⁸ m/s)

1. 17.3 GHz
2. 15.3 GHz
3. 10.1 GHz
4. 12.1 GHz

Correct answer: 17.3 GHz

Solution

Because v = 0.5c is relativistic, use the relativistic Doppler effect for an approaching observer: ν' = ν*sqrt((1+β)/(1-β)). With β = 0.5: ν' = 10*sqrt(1.5/0.5) = 10*sqrt(3) = 10 × 1.732 = 17.3 GHz.

Related JEE Main Physics questions

• A plane electromagnetic wave falls on a material surface. If it transfers momentum p and energy E, which statement is true?
• For an electromagnetic wave moving in vacuum, the electric field is expressed as E = E₀ sin(kx − ωt). Which of the following quantities does not depend on the wavelength?
• When an electromagnetic wave enters the ionised region of the ionosphere, the moving electron cloud gives rise to a space current, while the electric field also produces a capacitive displacement current. In this situation, what is the phase relation between the space current and the displacement current?
• The rms electric field associated with sunlight is 720 N/C. What is the mean total energy density of this electromagnetic wave?
• The electric field component of an electromagnetic wave in a medium is given by Eₓ = 0, E_y = 2.5 N/C cos[(2π × 10⁶ rad/m)x - (π × 10⁻² rad/s)t] ŷ, and E_z = 0. The wave is:
• A source of monochromatic green light radiates equally in every direction. If it converts only 3% of the 100 W electrical power it uses into electromagnetic radiation, then the electric-field amplitude of the emitted wave at a point 5 m away from the source is closest to:

⚔️ Practice JEE Main Physics free + battle 1v1 →