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

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. y=-16x^2+181x+59

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  1. The time that the rocket will hit the ground is 12.87 seconds.

    Step-by-step explanation :-

    Given : The rocket is launched from a tower

    [tex]y = – 16 {x}^{2} + 199x + 90[/tex]

    The height of the rocket, y in feet, is related to the time after launch, x in seconds, by the given equation.

    To find : The time that the rocket will hit the ground ?

    [tex] \huge\bold{\textbf{\textsf{{\color{cyan}{Solution :}}}}}[/tex]

    When the rocket hit the ground i.e. height became zero y=0,

    Equation is :-

    [tex]y = – 16 {x}^{2} + 199x + 90[/tex]

    [tex]\bold{\textbf{\textsf{{\color{pink}{substitute}}}}} \: y = 0[/tex]

    [tex]x = \frac{ -b + \sqrt{ {b – 4ac}^{2} } }{2a} [/tex]

    [tex]x = – \frac{ – (199) + \sqrt{ {199}^{2} – 4( – 16)(90)} }{2( – 16)} [/tex]

    [tex]x = \frac{ – 199 + \sqrt{45361} }{ – 32} [/tex]

    [tex]x = \frac{ – 199 – \sqrt{45361} }{ – 32} [/tex]

    [tex]x = – 0.43 \: , \: 12.87[/tex]

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