Incident wave y= A sin (ax + bt+ pi/2) i...

Incident wave `y= A sin (ax + bt+ pi/2)` is reflected by an obstacle at x = 0 which reduces intensity of reflected wave by 36%. Due to superposition, the resulting wave consists of a standing wave and a travelling wave given by
`y= -1.6 sin ax sin bt + cA cos (bt + ax)`
where A, a, b and c are positive constants.
1. Amplitude of reflected wave is

A

`x=(pi)/(3a)`

B

`x=(3pi)/(a)`

C

`x=(3pi)/(2a)`

D

`x=(2pi)/(3a)`

Text Solution

Verified by Experts

The correct Answer is:

C

`sinax=+-1 implies ax=(pi)/(2),(3pi)/(2),(5pi)/(2), . . . implies x=(3pi)/(2a)` for 2nd antinodes.

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