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Question

A wire of density 9×10-3kgcm-3 is stretched between two clamps 1m apart. The resulting strain in the wire is 4.9×10-4. The lowest frequency of the transverse vibrations in the wire is (Young’s modulus of wire Y=9×1010Nm-2), (to the nearest integer), _______.


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Solution

Step 1. Given data.

Density is ρ=9×10-3kgcm-3

Strain in the wire is l=4.9×10-4.

Young’s modulus of wire Y=9×1010Nm-2

Stretched length is l=1m

Step 2. calculating frequency

We know frequency relation is f=12lYlρl

Where, f is the frequency,

Y is Young’s modulus of wire

l is the Strain in the wire

ρ is the density

l is the Stretched length

By substituting the given values, we get

f=12×19×1010×4.9×10-49000×1=35HZ

Therefore, the lowest frequency of the transverse vibrations is 35Hz.


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