An aluminium rod- Young-s modulus 7- 109 N m-2- has a breaking strain of 0-2104 N is

Y=F/A/Breaking strain or a=F/Y × Breaking strain=10^4 × 100/7 × 10 × 0.2 =0.71× 10^ 3=7.1×10^ 4 ...

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Young's Modulus of Elasticity

An aluminium ...

Question

An aluminium rod, Young’s modulus $7 \times 10^{9} N m^{- 2},$ has a breaking strain of 0.2%. The minimum cross sectional area of the rod in $m^{2}$ in order to support a load of
$10^{4}$ N is

1 \times 10^{- 2}

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1.4 \times 10^{- 3}

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1 \times 10^{- 3}

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7.1 \times 10^{- 4}

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Solution

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7 \times 10^{9} N m^{- 2},

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7 \times 10^{9} N m^{- 2}

7 \times 10^{9} N m^{-} 2

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