Question

Acceleration of point x=2m of a transverse wave is 5j

Answer 1

Answer:

(dy/dx )(dx/dt)= 5sin[(pi/12)x](dx/dt)

(dy/dt)=5sin[(pi/12)x](dx/dt)...(i)

5?=5sin[(pi/12)x2](dx/dt) at x=2m

(dx/dt)=2?

d2y/dt2 =acceleration= 5x2?xpi/12cos[(pi/12)x]......differentiating (i)wrt t&putting the value of (dx/dt)

at x=2m,d2y/dt2 =acceleration=5x2?xpi/12cos[(pi/6)]

=2.26?

Answer 2

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