Time is required for the football to reach the highest point of the trajectory is 1.22 s
A rookie quarterback throws a football with an initial upward velocity component of 12.0 m>s and a horizontal velocity component of 20.0 m>s. ignore air resistance.
(a) how much time is required for the football to reach the highest point of the trajectory?
According to the kinematic equation the time required to reach max displacement is:
[tex]v_fy = v_iy - gt_1[/tex]
By subsitution we get [tex]t_1 = \frac{12}{9.8} = 1.22 s[/tex]
(b) how high is this point?
The max point is given by the equation
[tex]v_{fy}^{2} = v_{iy}^{2} - 2gy_{max}[/tex]
By substitution we get [tex]y_{max} = \frac{x_{iy}^{2} }{2g} = \frac{12^2}{2*9.8} = 7.35 m[/tex]
(c) how much time (after it is thrown) is required for the football to return to its original level? how does this compare with the time calculated in part (a)?
[tex]y(t) = y_0 + v_{yi}t-\frac{1}{2} gt^2[/tex]
Where:
[tex]y(t) = y_0 = 0[/tex] because the final position is the initial position is equal to zero
t is total time required to cover the total displacement
[tex]v_{iy} = 12m/s[/tex]
By substitution we get [tex]0 = 0 + 12t - 4.9 t^2[/tex]
[tex]t = 2.45 s[/tex]
(d) how far has the football traveled horizontally during this time?
According to projectile motion the horizontal displacement is given by
[tex]x =v_xt[/tex]
By substitution we get [tex]x = 20*2.45 = 49m[/tex]
(e) draw x-t, y-t, vx@t, and vy@t graphs for the motion.
Attached the graphs
Grade: 9
Subject: mathematics
Chapter: the motion
Keywords: Time, A rookie quarterback, air resistance, the football, physics
