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NEET PHYSICSMedium

Two identical piano wires kept under the same tension TT have a fundamental frequency of 600 Hz600 \text{ Hz}. The fractional increase in the tension of one of the wires which will lead to the occurrence of 6 beats/s6 \text{ beats/s} when both the wires oscillate together would be:

A

0.020.02

B

0.030.03

C

0.040.04

D

0.010.01

Step-by-Step Solution

  1. Identify the relation between frequency and tension: The fundamental frequency ff of a stretched wire is given by f=12LTμf = \frac{1}{2L}\sqrt{\frac{T}{\mu}}, which means fTf \propto \sqrt{T} .
  2. Determine the fractional change relation: By taking the natural logarithm on both sides and differentiating, we get the relationship for small changes: Δff=12ΔTT\frac{\Delta f}{f} = \frac{1}{2} \frac{\Delta T}{T}.
  3. Calculate the fractional change in frequency: The beat frequency is the difference between the new and old frequencies, so Δf=6 Hz\Delta f = 6 \text{ Hz} . The original frequency is f=600 Hzf = 600 \text{ Hz}. Therefore, the fractional change in frequency is Δff=6600=0.01\frac{\Delta f}{f} = \frac{6}{600} = 0.01.
  4. Calculate the fractional increase in tension: Rearranging the relation from step 2, the fractional change in tension is ΔTT=2×Δff\frac{\Delta T}{T} = 2 \times \frac{\Delta f}{f}. Substitute the value: ΔTT=2×0.01=0.02\frac{\Delta T}{T} = 2 \times 0.01 = 0.02. The fractional increase in tension is 0.020.02.
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