A spherical iron ball of 10cm radius is coated with a layer of ice of uniform thickness that melts at the rate of 50cm3/min. When the thickness of ice is 5cm, then the rate (in cm/min) at which the thickness of ice decreases, is :
A
56π
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B
154π
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C
136π
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D
118π
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Solution
The correct option is D118π Let thickness of ice be xcm. Therefore, net radius of sphere =(10+x)cm
Volume of sphere V=43π(10+x)3
⇒dVdt=4π(10+x)2dxdt At x=5,dVdt=50cm3/min ⇒50=4π×225×dxdt ⇒dxdt=118πcm/min