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NCERT Exemplar · Q31

Q.The source of electromagnetic waves can be a charge

(a) moving with a constant velocity.
(b) moving in a circular orbit.
(c) at rest.
(d) falling in an electric field.
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Electromagnetic waves are radiated only by an accelerating charge. A charge at rest or moving with constant velocity has unchanging fields and does not radiate. Of the four options, only (b) (moving in a circular orbit — continuous centripetal acceleration) and (d) (falling in an electric field — force produces acceleration) involve acceleration, so these are the correct choices; (a) and (c) are not.

Why acceleration is the key

A stationary charge has a static electric field around it — nothing changes with time, so there is no disturbance to propagate outward. A charge moving with constant velocity carries its field along with it, but in any fixed inertial frame the field pattern at a given point still only changes because the charge moves past it — there is no genuine "kink" that detaches and radiates away. It is only when the charge's velocity changes — that is, when it accelerates — that the field lines develop a travelling disturbance that propagates outward at speed cc as an electromagnetic wave.

Larmor's formula for the power radiated by an accelerating charge: P=q2a26πε0c3P=\frac{q^2a^2}{6\pi\varepsilon_0 c^3}

Radiated power is proportional to the square of the acceleration — zero acceleration means zero radiated power, regardless of how fast the charge is moving.

Checking each option

  1. Moving with a constant velocity. Constant velocity means zero acceleration (a=0a=0). By Larmor's formula, the radiated power is zero. Does not radiate — false.
  2. Moving in a circular orbit. Even though the speed may be constant, the direction of the velocity is continuously changing, which means there is a non-zero (centripetal) acceleration at every instant, always directed toward the centre of the orbit. Radiates — true.
  3. At rest. Zero velocity and, since nothing is causing it to move, zero acceleration. Does not radiate — false. …

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