A ball is thrown vertically with an initial velocity of #64# feet per second. Its height above the ground after #t# seconds is given by #h(t) = 64t—16t^2#. What is the maximum height?

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A ball is thrown vertically with an initial velocity of #64# feet per second. Its height above the ground after #t# seconds is given by #h(t) = 64t—16t^2#. What is the maximum height?

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Answer 1 · 2015-11-17T00:37:59

I found #h_(max)=64"feet"#

Explanation:

Ok...probably you can do this differently but I would try to find the vertex of the parabola describing the trajectory:
1) derive it:
#h`(t)=64-32t#
2) set derivative equal to zero:
#64-32t=0#
#t=64/32=2sec#
3) use this value of #t# into your trajectory:
#h(2)=h_(max)64*2-16*4=64"feet"#

Graphically:
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A ball is thrown vertically with an initial velocity of #64# feet per second. Its height above the ground after #t# seconds is given by #h(t) = 64t—16t^2#. What is the maximum height?

1 Answer

Explanation:

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