Loading...
If you drop a little pebble in a pond of still water, the water surface gets disturbed. The disturbance does not remain confined to one place, but propagates outward along a circle. If you continue dropping pebbles in the pond, you see circles rapidly moving outward from the point where the water surface is disturbed. It gives a feeling as if the water is moving outward from the point of disturbance. If you put some cork pieces on the disturbed surface, it is seen that the cork pieces move up and down but do not move away from the centre of disturbance. This shows that the water mass does not flow outward with the circles, but rather a moving disturbance is created. Similarly, when we speak, the sound moves outward from us, without any flow of air from one part of the medium to another. The disturbances produced in air are much less obvious and only our ears or a microphone can detect them. These patterns, which move without the actual physical transfer or flow of matter as a whole, are called waves
Velocity of sound waves in air is 330 m/s. For a particular sound wave in air, a path difference of 40 cm is equivalent to phase difference of 1.6S. The frequency of this wave is
Assertion: Particle velocity and wave velocity both are independent of time. Reason: For the propagation of wave motion, the medium must have the properties of elasticity and inertia.
Assertion: The change in air pressure affect the speed of sound. Reason: The speed of sound in a gas is proportional to the square root of pressure.
Assertion: Two waves moving in a uniform string having uniform tension cannot have different velocities. Reason: Elastic and inertial properties of string are same for all waves in same string. Moreover speed of wave in a string depends on its elastic and inertial properties only.
On the basis of dimensional analysis, derive the formula for the speed of transverse waves on a stretched string.
© 2026 PadhAiPro. This question is provided for educational purposes.