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A toy rocket launched into the air has a height ( h feet) at given time ( t seconds) as h= -16^2+160t until it hits the ground. At what time is it at a height of 9 feet above the ground?
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A toy rocket launched into the air has a height ( h feet) at given time ( t seconds) as h= -16^2+160t until it hits the ground. At what time is it at a height of 9 feet above the ground?

User Ilya Dyoshin
by
8.9k points

1 Answer

4 votes

Answer:


t = (53)/(32)

Explanation:


h=\:-16^2+160t


9=\:-16^2+160t
substitute


-16^2+160t=9


-256+160t=9


-256+160t+256=9+256


160t=265


(160t)/(160)=(265)/(160)


t=(53)/(32)

At
(53)/(32) seconds it is at a height of 9 ft.

User Rohan Sharma
by
8.6k points
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