A conical tank with an upper radius of 4m and a height of 5m

Solution

V = (1/3) * pi * r^2 * h

v = (1/3) * pi * (16/25) * h^3 [ r = (4/5) * h]
V = (16/75) * pi * h^3
dV/dt = (16/25) * pi * h^2 * dh/dt

dh/dt = -0.5 m/min, h= 3

dV/dt = (16/25) * pi * 9 * -0.5
dV/dt = (-144/50) * pi
dV/dt = (-72/25) * pi

The water is flowing out of the conical tank at a rate of (-72/25) * pi m^3/min.

Volume for cylinder:

V = pi * r^2 * h

r is unchanging, so let\'s find dV/dt and dh/dt

dV/dt = pi * r^2 * dh/dt

dV/dt = (72/25) * pi

Solve for dh/dt

(72 * pi / 25) / (pi * r^2) = dh/dt
72 / (25 * r^2) = dh/dt

r = 4

72 / (25 * 16) = dh/dt
9 / (25 * 2) = dh/dt
9 / 50 = dh/dt

The height in the cylindrical tank is rising at 9/50 m/min