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A diver bounces straight up from a diving board, avoiding the diving board on the way down, and falls feet first into a pool. She starts with a velocity of 4.00 m/s and her takeoff point is 1.80 m above
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A diver bounces straight up from a diving board, avoiding the diving board on the way down, and falls feet first into a pool. She starts with a velocity of 4.00 m/s and her takeoff point is 1.80 m above the pool. How long, in seconds, are her feet in the air?

User TianyuZhu
by
6.0k points

1 Answer

2 votes

Answer:

it will take 1.14 s to touch the water

Step-by-step explanation:

As we know that diver jumps upwards with initial speed


v_i = 4 m/s

now he takes off from initial height


h = 1.80 m

now we know that


h = vt + (1)/(2)gt^2


-1.80 = 4 t - 4.9 t^2

now by solving above equation for time "t" we have


t = 1.14 s

User Antony Shumskikh
by
5.1k points
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