EASY
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The distance between two successive minima of a transverse wave is 2.7 m. Five crests of the wave pass a given point along the direction of travel every 15.0 s. The speed of the wave is

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Important Questions on Wave Motion - Waves on a String

EASY
When light wave travels from air to glass
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A uniform rope of length L and mass m1, hangs vertically from a rigid support. A block of mass m2 is attached to the free end of the rope. A transverse pulse of wavelength λ1 is produced at the lower end of the rope. The wavelength of the pulse when it reaches the top of the rope is λ2. The ratio λ2λ1 is:
MEDIUM
A sound wave travelling in water has wavelength 0.4 m. Is this wave audible in air? (The speed of sound in water=1400 m s-1)
 
EASY
Given below are two different graphs of variation of density (or pressure) of the medium with position in figure (1) and with time in figure 2as a wave passes through the medium.
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What will be the speed of the wave in the given medium?
MEDIUM
A string of length 1 m and mass 5 g is fixed at both ends. The tension in the string is 8.0 N. The string is set into vibration using an external vibrator of frequency 100 Hz. The separation between successive nodes on the string is close to
MEDIUM
A steel wire of 0.72 m long has a mass of 5×10-3 kg. If the wire is under a tension of 60 N. What is the speed of transverse waves on the wire?
MEDIUM

The speed of sound in an elastic string when it is extended by x m is v. If it is further extended to 3x m, the speed of the sound becomes        

EASY
Consider a wire with density d and stress σ. For the same density, if the stress increases 2 times, the speed of the transverse waves along the wire changes by
EASY
An observer on the sea shore observes 54 waves reaching the coast per minute. If the wavelength is 10 m, the velocity of the wave is
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A steel wire has a length of 90 cm which is under a constant tension of 100 N. The speed of the transverse waves that can be produced in the wire will be (take the mass of the steel wire to be 6×10-3 kg)
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A person has a hearing range from 20 Hz-20 KHz. The typical wavelengths of sound waves in air corresponding to these two frequencies are: (speed of sound in air is 344 m s-1).
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A uniform thin rope of length 12 m and mass 6 kg hangs vertically from a rigid support and a block of mass 2 kg is attached to its free end. A transverse short wave train of wavelength 6 cm is produced at the lower and the rope. What is the wavelength of the wave train (in cm) when it reaches the top of the rope?
EASY
If the initial tension on a stretched string is doubled, then the ratio of the initial and final speeds of a transverse wave along the string is:
MEDIUM
The wavelength of a wave is 3 m. If the velocity of the wave is 330 ms-1, then find the frequency of that wave. Calculate the time period if the frequency of that wave is reduced to half of its value.
MEDIUM
A heavy ball of mass M is suspended from the ceiling of a car by a light string of mass m mM. When the car is at rest, the speed of transverse waves in the string is 60 m s-1. When the car has acceleration a, the wave-speed increases to 60.5 m s-1. The value of a  in terms of gravitational acceleration g is closed to:
MEDIUM
A transverse wave is represented by : y = 1 0 π sin 2 π T t - 2 π λ x  For what value of the wavelength the wave velocity is twice the maximum particle velocity?
MEDIUM
Consider a system of gas of a diatomic molecule in which the speed of sound at 0oC is 1260 m s-1 . Then, the molecular weight of the gas is in g mol-1, (given, the gas constant R is 8.314 J mol-1 K-1)
EASY
The mass per unit length of a uniform wire is 0.135 g cm-1. A transverse wave of the form y=-0.21sinx+30t is produced in it, where x is in meter and t is in second. Then, the expected value of tension in the wire is x×10-2 N. Value of x is               (Round-off to the nearest integer)
MEDIUM

A transverse wave propagating on a stretched string of linear density 3×10-4 kgm-1 is represented by the equation

y=0.2sin(1.5x+60t)

where, x in metres and t is in seconds. The tension in the string (in Newton) is

HARD
A block M hangs vertically at the bottom end of a uniform rope of constant mass per unit length. The top end of the rope is attached to a fixed rigid support at O. A transverse wave pulse (Pulse 1) of wavelength λ0 is produced at point O on the rope. The pulse takes time TOA to reach point A. If the wave pulse of wavelength λ0 is produced at point A (Pulse 2) without disturbing the position of M it takes time TOA to reach point O. Which of the following options is/are correct?
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