Answer:
The height of ball is 17 ft at t=0.55 and t=1.14.
Step-by-step explanation:
The general projectile motion is defined as
[tex]y=-16t^2+vt+y_0[/tex]
Where, v is initial velocity and y₀ is initial height.
It is given that the initial height is 7 and the initial upward velocity is 27.
Substitute v=27 and y₀=7 in the above equation to find the model for height of the ball.
[tex]h(t)=-16t^2+27t+7[/tex]
The height of ball is 17 ft. Put h(t)=17.
[tex]17=-16t^2+27t+7[/tex]
[tex]0=-16t^2+27t-10[/tex]
On solving this equation using graphing calculator we get
[tex]t=0.549,1.139[/tex]
[tex]t\approx 0.55,1.14[/tex]
Therefore the height of ball is 17 ft at t=0.55 and t=1.14.
