Answer:
a) Initial velocity of the ball=14.5 m/s
b)The ball rise to a height of 10.72 m/s
c)The velocity of the ball is zero at the highest point.
Explanation:
Taking point at which the ball is thrown to be origin. Distanced measured to be positive in upwards directions.
a)
Now using equation of motion
[tex]y=ut-\dfrac{gt^2}{2}\\-50=u\times5-\dfrac{9.8\times 5^2}{2}\\u=14.5\ \rm m/s[/tex]
The initial velocity of the ball is [tex] u=14.5\ \rm m/s[/tex]
b) Let h be the height that ball rise above the starting point given by
[tex]h=\dfrac{u^2}{2g}\\h=\dfrac{14.5^2}{2\times9.8}\\h=10.72\ \rm m[/tex]
c)The ball will be at rest with zero velocity at the highest point
