Final answer:
The velocity of the basketball player when leaving the floor is 4.20 m/s. The acceleration while straightening legs is 29.4 m/s^2. The force exerted on the floor is 4,314 N.
Step-by-step explanation:
To solve these problems, we can use the principles of kinematics and dynamics in physics. First, we need to calculate the velocity with which the basketball player leaves the ground to reach a height of 0.900 m.
Part A: Using the kinematic equation for constant acceleration under gravity (assuming upward is positive):
v2 = u2 + 2as where v is the final velocity (0 m/s at the peak of the jump), u is the initial velocity, a is the acceleration due to gravity (-9.81 m/s2), and s is the displacement (0.900 m). Solving for u gives:
u = sqrt(2 * 9.81 m/s2 * 0.900 m) = 4.20 m/s.
Part B: The equation v2 = u2 + 2as can also be used to find acceleration while the player is straightening legs, with u = 0 m/s and s = 0.300 m. Solving for a gives:
a = v2 / (2s) = (4.20 m/s)2 / (2 * 0.300 m) = 29.4 m/s2.
Part C: To find the force, we'll use Newton's second law: F = ma. The total force is the force needed to accelerate the player's mass plus the force required to overcome gravity (weight).
F = (110 kg)(29.4 m/s2) + (110 kg)(9.81 m/s2) = 4,314 N (upward)