The radius of a sphere is increased by $P %$ . Its surface area increases by

P %

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P^{2} %

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(2 p + \frac{p^{2}}{100}) %

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\frac{p^{2}}{2} %

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Solution

The correct option is C $(2 p + \frac{p^{2}}{100}) %$
Let r be radius of the sphere
New radius $= (r + \frac{p}{100} r) = (1 + \frac{p}{100} r)$
Original surface area of sphere $= 4 π r^{2}$
New surface area
$= 4 π {((1 + \frac{p}{100}) r)}^{2} = 4 π {(1 + \frac{p}{100})}^{2} r^{2}$
$∴ %$ increase in surface area
$= \frac{C h a n g e i n s u r f a c e a r e a}{O r i g i n a l s u r f a c e a r e a} \times 100$
$(1 + \frac{p^{2}}{(100)^{2}} + \frac{2 p}{100} - 1) \times 100 = (\frac{p^{2}}{100} + 2 P) %$

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