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Question: A steel rod \(25\;{\text{cm}}\) long has a cross sectional area of \(0.8\;{\text{c}}{{\text{m}}^{\te...

A steel rod 25  cm25\;{\text{cm}} long has a cross sectional area of 0.8  cm20.8\;{\text{c}}{{\text{m}}^{\text{2}}} . Force required to stretch this rod by the same amount as the by the expansion produced by heating it through 10{10^\circ } is
(Coefficient of linear expansion of steel is 105/C{10^{ - 5}}{/^\circ }{\text{C}} and Young’s modulus of steel is 2×1010  N/m22 \times {10^{10}}\;{\text{N/}}{{\text{m}}^{\text{2}}} ).
A) 160  N{\text{160}}\;{\text{N}}
B) 360  N{\text{360}}\;{\text{N}}
C) 106  N{\text{106}}\;{\text{N}}
D) 260  N{\text{260}}\;{\text{N}}

Explanation

Solution

Hint:- The ratio of the change in length to the original length can be termed as the strain. The coefficient of linear expansion is proportional to strain and inversely proportional to the change in temperature. From the expression for the Young’s modulus of the steel rod, the force can be found.

Complete Step by step answer:
Given the length of the steel rod is l=25  cm = 25×102  ml = 25\;{\text{cm = 25}} \times {\text{1}}{{\text{0}}^{ - 2}}\;{\text{m}}, cross sectional area isA=0.8  cm2=0.8  ×104  m2A = 0.8\;{\text{c}}{{\text{m}}^{\text{2}}} = 0.8\; \times {10^{ - 4}}\;{{\text{m}}^{\text{2}}}, coefficient of linear expansion is α=105/C\alpha = {10^{ - 5}}{/^\circ }{\text{C}}, Young’s modulus of steel is Y=2×1010  N/m2Y = 2 \times {10^{10}}\;{\text{N/}}{{\text{m}}^{\text{2}}} and change in temperature is Δt=10C\Delta t = {10^\circ }{\text{C}}.
The expression for coefficient of linear expansion is given as,
α=Δll×Δt Δll=α×Δt  \alpha = \dfrac{{\Delta l}}{{l \times \Delta t}} \\\ \dfrac{{\Delta l}}{l} = \alpha \times \Delta t \\\
Where, α\alpha is the coefficient of linear expansion, Δt\Delta t is the change in temperature and Δll\dfrac{{\Delta l}}{l} is the ratio of change in length to the actual length. This can be called the strain.
Substituting the values in the above expression,
Δll=105/C×10C  = 104  \dfrac{{\Delta l}}{l} = {10^{ - 5}}{/^\circ }{\text{C}} \times {10^\circ }{\text{C}} \\\ {\text{ = 1}}{{\text{0}}^{ - 4}} \\\
The stain is obtained as 104{\text{1}}{{\text{0}}^{ - 4}}.
The expression for the young’s modulus is given as,
Y=F×lA×ΔlY = \dfrac{{F \times l}}{{A \times \Delta l}}
Where, FF is the force required to stretch the steel rod of cross sectional area AA and length ll by Δl\Delta l .
From the above expression,
F=Y×A×Δll =Y×A×Δll  F = \dfrac{{Y \times A \times \Delta l}}{l} \\\ = Y \times A \times \dfrac{{\Delta l}}{l} \\\
Substituting the values in the above expression,
F=2×1010  N/m2×0.8  ×104  m2×104 =160  N  F = 2 \times {10^{10}}\;{\text{N/}}{{\text{m}}^{\text{2}}} \times 0.8\; \times {10^{ - 4}}\;{{\text{m}}^{\text{2}}} \times {10^{ - 4}} \\\ = 160\;{\text{N}} \\\
Therefore the force needed to stretch the steel rod is 160  N160\;{\text{N}}.

The answer is option A.

Note: We have to note that when the strain is a larger value, the force applied to stretch will be a larger value. And the measure of elasticity is the young’s modulus of the material.