The difference between the apparent frequencies of a source of sound as perceived by a stationary observer during its approach and recession is 2% of the actual frequency of the source. If the speed of sound is 300 m/s, the speed of source is

1.5 m/s

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3 m/s

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6 m/s

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12 m/s

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Solution

The correct option is B 3 m/s
$\frac{f_{a p p r o a c h} - f_{r e c o d e}}{f} = \frac{Δ f}{f} = \frac{v}{v - v_{s}} - \frac{v}{v + v_{s}} ∴ \frac{Δ f}{f} = \frac{v (v + v_{s} - v + v_{s})}{v^{2} - v_{s}^{2}} = \frac{2 v v_{s}}{v^{2} - v_{s}^{2}}$
$B u t \frac{Δ f}{f} \times 100 = 2 % \Rightarrow 0.02 = \frac{2 (300) v_{s}}{(300)^{2} - v_{s}^{2}} \Rightarrow 0.02 = \frac{2 (300) v_{s}}{(300)^{2}} = \frac{2}{300} v_{s} ∴ v_{s} = (0.01) 300 = 3 m / s$

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