Answer:
[tex]V_{b/p}=14.48 m/s[/tex] at an angle of 31.24°
Explanation:
We know that [tex]V_{b/p} = V_{b}-V_{p}[/tex] so we need the velocity of the ball relative to ground.
The equations for the ball in X and Y are these ones:
[tex]X_{b}=V_{b}*cos(37.3)*t[/tex]
[tex]Y_{b}=V_{b}*sin(37.3)*t-\frac{g*t^{2}}{2}[/tex]
From X-axis equation:
[tex]t=\frac{16.1}{V_{b}*cos(37.3)}[/tex] Replacing this value in the Y-axis equation we can find Vb:
[tex]V_{b}=12.92m/s[/tex] And this is the magnitude relative to ground. The components are:
[tex]V_{b}=[12.92*cos(37.3),12.92*sin(37.3)]=[10.28,7.83]m/s[/tex]
Now we calculate the velocity of the ball relative to the player as:
[tex]V_{b/p} = V_{b}-V_{p}=[12.19,7.83]m/s[/tex] If we now calculate the magnitude and the angle of this vector, we get the answer to the problem:
[tex]V_{b/p} = (14.48 < 31.24°)m/s[/tex]
