Answer: 2 seconds.
Step-by-step explanation:
Given : A ball is thrown upward with an initial velocity of 16 ft/sec from a height of 32 ft above the ground.
The height, in feet, of the ball t sec after it is thrown can be represented by
[tex]s=-16t^2+16t+32.[/tex]
When ball reaches the ground , s= 0.
[tex]\Rightarrow -16t^2+16t+32=0[/tex]
Divide both sides by 16 , we get
[tex]-t^2+t+2=0\\\\\Rightarrow\ t^2-t-2=0\\\\\Rightarrow\ t^2-2t+t-2=0\\\\\Rightarrow\ (t-2)(t+1)=0 \\\\\Rightarrow\ t=2,-1[/tex]
But time cannot be negative , so t= 2.
Hence , it will take 2 seconds for the ball to reach the ground.
