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Two sources of sound placed close to each other, are emitting progressive waves given by y1=4sin(600πt)y_1 = 4 \sin(600\pi t) and y2=5sin(608πt)y_2 = 5 \sin(608\pi t). An observer located near these two sources of sound will hear

A

44 beats per second with intensity ratio 25:1625:16 between waxing and waning

B

88 beats per second with intensity ratio 25:1625:16 between waxing and waning

C

88 beats per second with intensity ratio 81:181:1 between waxing and waning

D

44 beats per second with intensity ratio 81:181:1 between waxing and waning

Step-by-Step Solution

  1. Determine Frequencies: Compare the given wave equations y1=4sin(600πt)y_1 = 4 \sin(600\pi t) and y2=5sin(608πt)y_2 = 5 \sin(608\pi t) with the standard wave equation y=Asin(ωt)y = A \sin(\omega t), where ω=2πf\omega = 2\pi f. For the first wave: ω1=600π    2πf1=600π    f1=300 Hz\omega_1 = 600\pi \implies 2\pi f_1 = 600\pi \implies f_1 = 300 \text{ Hz} For the second wave: ω2=608π    2πf2=608π    f2=304 Hz\omega_2 = 608\pi \implies 2\pi f_2 = 608\pi \implies f_2 = 304 \text{ Hz}
  2. Calculate Beat Frequency: The beat frequency is the difference between the two frequencies : fbeat=f1f2=300304=4 beats/sf_{\text{beat}} = |f_1 - f_2| = |300 - 304| = 4 \text{ beats/s}
  3. Determine Amplitudes and Intensity Ratio: The amplitudes of the waves are A1=4A_1 = 4 and A2=5A_2 = 5. The intensity of a wave is directly proportional to the square of its amplitude (IA2I \propto A^2).
  • For waxing (constructive interference/maximum intensity): Imax(A1+A2)2=(4+5)2=92=81I_{\max} \propto (A_1 + A_2)^2 = (4 + 5)^2 = 9^2 = 81 .
  • For waning (destructive interference/minimum intensity): Imin(A1A2)2=(45)2=(1)2=1I_{\min} \propto (A_1 - A_2)^2 = (4 - 5)^2 = (-1)^2 = 1 .
  • The intensity ratio between waxing and waning is therefore Imax:Imin=81:1I_{\max} : I_{\min} = 81:1.
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