Question

asked Sep 3, 2020 160k views

2 Answers

Jesmy · Answer 1 · 2020-09-07T10:54:36+0000

Answer:

$t=2.47\ s$

The ball takes 2.47 seconds to touch the ground

Explanation:

The equation that models the height of the ball in feet as a function of time is:

h(t) = h_0 + s_0t -16t ^ 2

Where
h_0 is the initial height,
s_0 is the initial velocity and t is the time in seconds.

We know that the initial height is:

$h_0 = 4.5\ ft$

The initial speed is:

$s_0 = 110sin(20\°)\\\\s_0 = 37.62\ ft/s$

So the equation is:

h (t) = 4.5 + 37.62t -16t ^ 2

The ball hits the ground when when
h(t) = 0

So

4.5 + 37.62t -16t ^ 2 = 0

We use the quadratic formula to solve the equation for t

For a quadratic equation of the form

at^2 +bt + c

The quadratic formula is:

$t=(-b\±√(b^2 -4ac))/(2a)$

In this case

$a= -16\\\\b=37.62\\\\c=4.5$

Therefore

$t=(-37.62\±√((37.62)^2 -4(-16)(4.5)))/(2(-16))$

$t_1=-0.114\ s\\\\t_2=2.47\ s$

We take the positive solution.

Finally the ball takes 2.47 seconds to touch the ground

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