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Exercises · 13.1

Q.Which of the following examples represent periodic motion?

(a) A swimmer completing one (return) trip from one bank of a river to the other and back.
(b) A freely suspended bar magnet displaced from its N-S direction and released.
(c) A hydrogen molecule rotating about its centre of mass.
(d) An arrow released from a bow.
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Periodic motion repeats itself identically at regular time intervals. Only the bar magnet (b) and the rotating hydrogen molecule (c) satisfy this criterion — the swimmer and arrow do not return to repeat their motion.

Understanding Periodic Motion

Periodic motion is motion that repeats itself in equal intervals of time, tracing the same path over and over. The key requirements are:

  • The motion must return to its starting configuration
  • It must do so repeatedly, not just once
  • The time interval between repetitions (the period) must be constant

Think of a pendulum, a planet orbiting the Sun, or your heartbeat — each completes a cycle and immediately begins the next identical cycle.

Now let's examine each scenario:

  1. The swimmer (a) — NOT periodic

    The swimmer completes one return trip and stops. Yes, the motion involves returning to the starting point, but that's where it ends. There's no repetition, no second cycle, no third. The swimmer doesn't automatically begin another lap the moment they touch the bank.

    Periodic motion requires the cycle to continue indefinitely (or at least for multiple cycles). A single back-and-forth journey is just that — a single journey, not a repeating pattern.

  2. The bar magnet (b) — PERIODIC

    When you displace a freely suspended bar magnet from its North-South equilibrium and release it, Earth's magnetic field exerts a restoring torque. The magnet swings back toward the N-S line, overshoots due to inertia, swings to the other side, and returns again.

    This is simple harmonic motion (or damped harmonic motion if we account for air resistance). The magnet oscillates about the N-S direction repeatedly with a definite period. Each swing follows the same path, and the motion continues cycle after cycle until friction eventually damps it out — but the nature of the motion is periodic.

    Tip

    Any system with a restoring force proportional to displacement (or restoring torque proportional to angular displacement) executes periodic motion, at least approximately.

  3. The hydrogen molecule (c) — PERIODIC

    A hydrogen molecule (H2\text{H}_2) rotating about its center of mass is a beautiful example of periodic motion. The molecule spins continuously, and after each complete rotation of angle 2π2\pi, it returns to exactly the same configuration.

    The period is T=2πωT = \frac{2\pi}{\omega}, where ω\omega is the angular velocity. This rotation continues indefinitely (ignoring quantum effects and collisions), making it perfectly periodic. Every point on the molecule traces a circular path repeatedly.

  4. The arrow (d) — NOT periodic

    Once released from a bow, the arrow follows a parabolic trajectory under gravity and eventually hits the ground (or a target). It does not return to the bow, it does not repeat its path, and it certainly doesn't launch itself again.

    This is projectile motion — a one-time event, not a repeating cycle.

Watch out

Don't confuse motion that could be repeated by external intervention (like manually swimming another lap or shooting another arrow) with motion that repeats by itself due to the system's dynamics.

MotionReturns to start?Repeats automatically?Periodic?
SwimmerYes (once)No✗
Bar magnetYesYes✓
Rotating moleculeYesYes✓
ArrowNoNo✗
✓Final answer

The examples representing periodic motion are (b) the freely suspended bar magnet and (c) the hydrogen molecule rotating about its center of mass.

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