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A bullet is shot at an angle of 32° above the horizontal on a level surface. It travels in the air for 6.4 seconds before it strikes the ground 92m from the shooter. What was the maximum height reached
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A bullet is shot at an angle of 32° above the horizontal on a level surface. It travels in the air for 6.4 seconds before it strikes the ground 92m from the shooter. What was the maximum height reached by the bullet?

User Radhakrishna
by
4.7k points

1 Answer

4 votes

Answer:

H = 4.12 m

Step-by-step explanation:

As we know that horizontal range is the distance moved in horizontal direction

Since horizontal direction has no acceleration

so here we have


Range = v_x T

here we know that


v_x = vcos32

so from above formula


92 = (vcos32)(6.4)


v = 16.95 m/s

now we have maximum height is given as


H = ((vsin32)^2)/(2g)


H = ((16.95 sin32)^2)/(2(9.8))


H = 4.12 m

User Lunochkin
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