A transerse sinusodial wave of amplitude `2 mm` is setup in a long uniform string. Snapshot of string from `x =0` to `x = pi` meter is taken at `t = 0`, which is shown. Velocity of point `P` is in `-y` direrction. Magnitude of relative velocity of `P` with respect to `Q` is `2 cm//s`. Choose the correct options : wave equation is

The block Q moves to the right with a constant velocity v_(0) as shown in figure. The relatives velocity of body P with respect to Q is ( assume all pulleys and strings are ideal)

A transverse sinusoidal wave of wavelength 20 cm is moving along a string towards increasing x. the transverse displacement of the string particle at x=0 as a function of time is shown in figure. Q. The velocity of propagation of the wave is ?

Shape of a string transmitting wave along x-axis some instant is shown. Velocity of point P v - ( 4pi )cm /s ( theta ) = tan^(-1) (0.004 pi )

Stationary wave is setup in a uniform string clamped at both the ends. Length of the string is 0.3 m.Snapshot of the string is taken the two instants one at t=0 sec and another at t=0.2 sec. These is two snapshots are shown below. Velocity of point P (which is also the mid point of the string ) is in upward direction (take upward direction to be positive ) at t=0 sec.At the instant snapshots are taken particles are at half of their respective maximum displacement from mean position.During this time interval particles have crossed their mean position only once.Answer the following 3 questions for the qiven situation. Velocity of travelling wave in the string is :

Stationary wave is setup in a uniform string clamped at both the ends. Length of the string is 0.3 m.Snapshot of the string is taken the two instants one at t=0 sec and another at t=0.2 sec. These is two snapshots are shown below. Velocity of point P (which is also the mid point of the string ) is in upward direction (take upward direction to be positive ) at t=0 sec.At the instant snapshots are taken particles are at half of their respective maximum displacement from mean position.During this time interval particles have crossed their mean position only once.Answer the following 3 questions for the qiven situation. Velocity time graph of particle at mid point of the string (i.e. particle P)

A transverse wave of wavelength 50 cm is travelling towards+vex-axis along a string whose linear density is 0.05 g//cm . The tension in the string is 450 N. At t=0,the particle at x=0 is passing through its mean position wave. The amplitude of the wave is 2.5 cm.

A transverse sine wave of amplitude 10 cm and wavelength 200 cm travels from left to right along a long horizontal stretched, string with a speed of 100 cm/s. Take the origin at left end of the string. At time t = 0 the left end of the string is at the origin and is moving downward. Then the equation of the wave will be ( in CGS system )

For a certain transverse standing wave on a long string , an antinode is formed at x = 0 and next to it , a node is formed at x = 0.10 m , the displacement y(t) of the string particle at x = 0 is shown in Fig.7.97.

For a certain transverse standing wave on a long string , an antinode is formed at x = 0 and next to it , a node is formed at x = 0.10 m , the displacement y(t) of the string particle at x = 0 is shown in Fig.7.97.

A standing wave on a string is given by y = ( 4 cm) cos [ x pi] sin [ 50 pi t] , where x is in metres and t is in seconds. The velocity of the string section at x = 1//3 m at t = 1//5 s , is