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kelsey goes cliff diving into the ocean. Her height as a function of time can be modeled by the function h(t)=-16t^2+480, where t is the time in seconds and h is the height in feet. How long does it take for Kelsey to reach the water?

User Diego Castro
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1 Answer

15 votes
15 votes

Answer:

to differential calculus, because I don't know how to answer this question without

using it.

We're told that Jason's height above the water is H(t) = -16t² + 16t + 480 .

We can observe many things from this equation:

-- Up is the positive direction; down is the negative direction.

-- The acceleration of gravity is 32 ft/sec² .

-- Jason jumps upward from the cliff, at 16 ft/sec .

-- The cliff is 480-ft above the water.

(This tells us why the question is only concerned with his maximum height,

and then it ends ... 480-ft is one serious cliff, and what happens after the

peak of his arc is too gruesome to contemplate.)

In any case, his vertical velocity is the first derivative, with respect to time,

of his height above the water.

V = -32 t + 16

At the peak of his arc, where gravity takes over, his velocity changes from

upward to downward, and it's momentarily zero.

0 = -32t + 16

Add 32t to each side: 32t = 16

Divide each side by 32: t = 1/2 second

His height at that instant is H(0.5) = -16(0.5)² + 16(0.5) + 480 =

4-ft above the cliff, 484-ft above the water,

and then he begins falling from that altitude.

The duration of his dive is 484 = 16 t²

t = √(484/16) = 5.5 seconds

and he hits the water at V = a t = (32) x (5.5) = 176 ft/sec = exactly 120 mph

Explanation:

User Our Man In Bananas
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