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A rocket is launched from a tower. The height of the rocket, y in feet, is related to the time after launch, x in seconds, by the given equation. Using this equation, find the time that the rocket will hit the ground, to the nearest 100th of second.(Quadratic Word Problems (Profit/Gravity)

y=-16x^2+121x+83

User Shantese
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1 Answer

15 votes
15 votes

Answer:

The rocket will hit the ground after about 8.20 seconds.

Explanation:

The height of the rocket y, in feet, x seconds after launch is modeled by the equation:


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We want to find the time at which the rocket will hit the ground.

If it hits the ground, the height of the rocket y will be 0. Thus:


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We can solve for x. Factoring (if possible at all) or completing the square can be tedious, so we can use the quadratic formula:


image

In this case, a = -16, b = 121, and c = 83. Substitute:


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Simplify:


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Divide everything by -1 and simplify the square root. The plus/minus will remain unchanged:


image

Therefore, our two solutions are:


image

Since time cannot be negative, we can ignore the second solution.

Therefore, the rocket will hit the ground after about 8.20 seconds.

User Barett
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