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Question

If the error in measurement of the surface area of a sphere is 4%, then the error in measurement of its volume will be


A
4%
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B
6%
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C
8%
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D
16%
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Solution

The correct option is B 6%
Surface area, s =4πr2 , where 4π is constant, log(s)=log(4π) + 2 log(r)Therefore, δss= 2δrr = 4%δrr = 2%
Volume, v=43πr3
log v=log(4πr3)log(3)log v=log(4π)+3log(r)log(3 )δvv=3δrr=3×2=6%

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