Answer:
Initial velocity = [tex]29.43m/s[/tex] b) Height it reaches = 44.145 m
Explanation:
Using the first equation of motion we have
[tex]v=u+at[/tex]
here
v is the final velocity
u is the initial velocity
a is the acceleration of the object
t is time
When the ball reaches it's highest point it's velocity will become 0 as it will travel no further
Also the acceleration in our case is acceleration due to gravity ([tex]-9.8m/s^{2}[/tex]) as the ball moves in it's influence alone with '-' indicating downward direction
Thus applying the values we get
[tex]0=u-(9.81)m/s^{2}\times 3\\\\u=19.43m/s[/tex]
b)
By 3rd equation of motion we have
[tex]v^{2}-u^{2}=2gs[/tex]
here s is the distance covered
Applying the value of u that we calculated we get
[tex]s=\frac{-u^{2}}{2g}\\\\s=\frac{-29.43^{2}}{-2\times 9.81}\\\\s=44.145m[/tex]
