The height "h" of a ball thrown straight up with a velocity of 88 ft/s is given by h = -16t^2 + 88t where "t" is the time it is in the air. For how many seconds the ball is in the air before it hits the

asked Oct 24, 2023 44.9k views

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Answer:

t=5.5

Explanation:

The ball hits the ground when h = 0.

$-16t^2 + 88t = 0 \\ \\ 2t^2 - 11t =0 \\ \\ t(2t-11)=0 \\ \\ t=0, 5.5$

However, as the answer must be positive, t=5.5

NWaters answered Oct 28, 2023

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