SOLUTION: when a ball is thrown, it's height in feet H after t seconds is given by the equation h=vt-16t^2 where v is the initial upwards velocity in feet per second if v=13 feet per second

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Question 330347: when a ball is thrown, it's height in feet H after t seconds is given by the equation h=vt-16t^2 where v is the initial upwards velocity in feet per second if v=13 feet per second find all the values of t for which h=2
Answer by Alan3354(69443) (Show Source):
You can put this solution on YOUR website!
when a ball is thrown, it's [sic] height in feet H after t seconds is given by the equation h=vt-16t^2 where v is the initial upwards velocity in feet per second if v=13 feet per second find all the values of t for which h=2
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h(t) = vt-16t^2
Sub 2 for h and 13 for h
2 = 13t - 16t^2
16t^2 - 13t + 2 = 0

Solved by pluggable solver: SOLVE quadratic equation (work shown, graph etc)

Quadratic equation (in our case ) has the following solutons:

For these solutions to exist, the discriminant should not be a negative number.

First, we need to compute the discriminant : .

Discriminant d=41 is greater than zero. That means that there are two solutions: .

Quadratic expression can be factored:

Again, the answer is: 0.206152367580223, 0.606347632419777. Here's your graph:

t = x
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It's at 2 feet twice, going up, then coming back down.
Most people find it difficult to throw a ball straight up from ground level.