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A ball is thrown into the air with an upward velocity of 44 ft/s. Its height h in feet after t seconds is given by the function h=-16t ^(2) +44t+9. What is the height of the ball after 2 seconds?
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A ball is thrown into the air with an upward velocity of 44 ft/s. Its height in feet after seconds is given by the function 
h=-16t ^(2) +44t+9. What is the height of the ball after 2 seconds?

User Cassie
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2 Answers

5 votes

the\ function:\ \ h(t)=-16t^2+44t+9\\ \\ h=2\ \ \ \Rightarrow\ \ \ h(2)=-16\cdot 2^2+44\cdot 2+9=-16\cdot4+88+9=33\\ \\Ans.\ the\ height\ of\ the\ ball\ after\ 2\ seconds\ is\ 33\ feets
User Farhan Haque
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8.1k points
7 votes

h=-16t^2+44t+9\\\\substitute\ t=2:\\\\h=-16\cdot2^2+44\cdot2+9=-16\cdot4+88+9=-64+97=33\\\\Answer:33\ feets.
User Tahir Ahmed
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8.5k points
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