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Standard XII

Physics

Interference in Sound Waves

Two loudspeak...

Question

Two loudspeakers $L_{1}$ and $L_{2}$ driven by a common oscillator and amplifier, are arranged as shown. The frequency of the oscillator is gradually increased from zero and the detector at D records a series of maxima and minima. If the speed of sound is $330 m s^{- 1}$ , then the frequency at which the first maximum is observed is

165 Hz

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330 Hz

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496 Hz

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660 Hz

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Solution

The correct option is B
330 Hz

Path difference between the wave reaching at D

$Δ x$ = $L_{2} P - L_{1} P$ = $\sqrt{40^{2} + 9^{2}} - 40$ = 41 - 40 = 1 m

For maximum $Δ x$ = $n λ$

For first maximum $(n = 1)$ $\Rightarrow$ $1$ = $(1) λ$ $\Rightarrow$ $λ$ = $1 m$

$\Rightarrow$ frequency = $\frac{v}{λ}$ = $330 H z$ .

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The correct option is B 330 Hz Path difference between the wave reaching at D Δx = L2P−L1P = √402+92−40 = 41 - 40 = 1 m For maximum Δx = nλ For first maximum (n=1) ⇒ 1 = (1)λ ⇒ λ = 1m ⇒ frequency = vλ = 330 Hz.