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28 July, 22:35

An object is launched upward at 64 ft/sec from a platform that is 80 feet high. What is the objects maximum height if the equation of height (h) in terms of time (t) of the object is given by h (t) = - 16t2 + 64t + 80?

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  1. 28 July, 22:55
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    Ht + 16t2 - 64t - 80 = 0

    ht - (((0 - 24t2) + 64t) + 80) = 0

    3.1 Solve ht+16t2-64t-80 = 0

    theres no solution found honey
  2. 28 July, 22:57
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    1) we calculate the first derivative:

    h' (x) = - 32t+64

    2) we equalized to "0" the first derivative, and find out the value of "t".

    -32t+64=0

    -32t=-64

    t=-64/-32

    t=2

    3) we calculate the second derivative:

    h''=-32<0 ⇒ then, we have a maximum at t = (2)

    4) we calculate the height at t=2

    h (2) = - 16 (2) ²+64 (2) + 80=-32+128+80=176.

    Answer: the maximum height is 176 m.
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