Question

An object is thrown upward from the ground with an initial velocity of 32ft/s. What is the maximum height the object obtains using the formula s = -16t^2 + 32t, where s = distance above the ground in feet, and t= time in seconds?

Answer 1

The maximum height with respect to time will occur when the derivative of the distance(time) function equals `0`

`s = -16t^2+32t`

`(ds)/(dt) = -32t+32`

Maximum occurs when
`-32t+32=0`
`rarr t=1`

When `t=1` the object is at a height of
`-16(1)^2 +32(1)`

`=16` (feet)