A ball is thrown vertically upward from a height of 6 feet with an initial velocity of 41 feet per second. how high will the ball go? (round your answer to two decimal places.)

Question

Physics

Emilia Chavez

31 October, 12:59

A ball is thrown vertically upward from a height of 6 feet with an initial velocity of 41 feet per second. how high will the ball go? (round your answer to two decimal places.)

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Answers (1)

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Dallas Armstrong · Answer 1

Given: Height h = 6 ft or the vertical component "y" this become the initial height, therefore if you want to know the total height of the stone with respect to the ground. you can just add up the two value below.

Initial Velocity Vi = 41 ft/s g = - 32.2 ft/s² acting downward

Require: Height h = ?

Formula: y = Vf² - Vi²/2g

y = 0 - (41 ft/s) ²/2 (-32.2 ft/s²)

y = - 1,681 ft²/s² / (-64.4 ft/s²)

y = 26.10 ft