The ratio of diameters of two wires of same material is $n : 1$ . The length of wires are 4 m each. On applying the same load, the ratio of the increase in the length of thin wire to the thick wire will be

n²

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$\sqrt {n}$

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Solution

The correct option is A
n²

Since $F$ , $L$ and $Y$ are constants,

$l \propto \frac{1}{A} \Rightarrow l \propto \frac{1}{d^{2}}$ , where d is the diameter of the wire. Therefore,

$\frac{l_{2}}{l_{1}} = {(\frac{d_{1}}{d_{2}})}^{2}$

$= n^{2}$

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The ratio of diameters of two wires of same material is n:1. The length of wires are 4 m each. On applying the same load, the ratio of the increase in the length of thin wire to the thick wire will be

The correct option is A n2 Since F , L and Y are constants, l∝1A⇒l∝1d2, where d is the diameter of the wire. Therefore, l2l1=(d1d2)2 =n2

The ratio of diameters of two wires of same material is $n : 1$ . The length of wires are 4 m each. On applying the same load, the ratio of the increase in the length of thin wire to the thick wire will be

The correct option is A
n²

Since $F$ , $L$ and $Y$ are constants,

$l \propto \frac{1}{A} \Rightarrow l \propto \frac{1}{d^{2}}$ , where d is the diameter of the wire. Therefore,

$\frac{l_{2}}{l_{1}} = {(\frac{d_{1}}{d_{2}})}^{2}$

$= n^{2}$