Answer:
Step-by-step explanation:
Given that a projectile is launched vertically upward from the ground with an initial velocity of 70 ft per sec
Neglecting air resistance, its height s (in feet) above the ground t seconds after projection is given by
[tex]s=-16t^2+70t[/tex]
When height = 10 feet we have to find the time
Hence substitute s = 10 ft
[tex]10=-16t^2+70t\\16t^2-70t+10=0\\[/tex]
We may get two answers as
[tex]0.148, 4.227 seconds[/tex]
The first time is for going up and the second is for coming down.
