Answer:
The pitching speed of your friend is 33.20 m/s
Explanation:
Lets explain how to solve the problem
Your friend throw the ball horizontally that means the vertical initial
component of velocity is zero ([tex]u_{y}=0[/tex]).
The ball is thrown from a height 4 meters above the ground.
The height [tex]h=u_{y}t+\frac{1}{2}gt^{2}[/tex]
Remember: the height is negative value because its below the point of
thrown (initial position)
h = -4 m , [tex]u_{y}=0[/tex] and g = -9.8 m/s²(downward)
Substitute these values in the rule above
⇒ [tex]4=0-\frac{1}{2}(9.8)t^{2}[/tex]
⇒ -4 = -4.9t² (multiply both sides by -1)
⇒ 4 = 4.9t² (divide both sides by 4.9)
⇒ 0.81633 = t² (take √ for both sides)
⇒ t = 0.9035
Then the time of the ball to land on the ground is 0.9035 seconds
The range of the ball on the ground is 30 m
The range [tex]R=u_{x}*t[/tex], where [tex]u_{x}[/tex] is the horizontal
component of the initial velocity
R = 30 meters and t = 0.9035
⇒ [tex]30=u_{x}(0.9035)[/tex] (divide both sides by 0.9035)
⇒ [tex]u_{x}=33.20[/tex] m/s
The pitching speed of your friend is 33.20 m/s
