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Question

Two wires A and B of same material have radii in ratio 2:1 and length 4:1. The ratio of the normal forces required to produce the same change in the length of these two wires is:

A
1 : 4
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B
2 : 1
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C
1 : 2
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D
1 : 1
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Solution

The correct option is D 1 : 1
We know, elongation in wire (ΔL)=FLAY
or F=AYΔLL ( F = normal force)
Given:
Material of both wires is same YA=YB
Elongation in both wires A and B are equal ΔLA=ΔLB
So, FAL

FAFB=AALA×LBAB ButAAAB=πr2Aπr2B=r2ArB
FAFB=r2Ar2B×LBLA =(2)2×14=1 [rArB=21 and LALB=41(given)]


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