A piece of ice stays in the shape of a sphere as it melts. The volume of the ice is decreasing at a constant rate of 3π/2 cubic feet per hour. What is the rate of change of the surface area of the piece of ice when the radius is 10 feet?

Question

I found the rate of change of the radius to be -3/800 feet per hour and the rate of change of the surface area to be -3π/10 square feet per hour.

Steve · Accepted Answer

A = 4πr^2 dA/dt = 8πr dr/dt v = 4/3 πr^3 dv/dt = 4πr^2 dr/dt when r=10, we have -3π/2 = 400π dr/dt dr/dt = -3/800 dA/dt = 80π * -3/800 = -3π/10 You are correct