Answer:
Explanation:
Given
acceleration a = - 7.5 m/s^2
time t = 23secs
Required
Stopping distance S
First let us get the initial velocity if the child using:
v = u + at
Note that v = 0
0 = u -7.5(23)
u = 7.5 * 23
u =172.5m/s
Using the equation of motion to get the stopping distance:
v² = u²+2aS
0 = u²+2aS
-u² = 2aS
-172.5² = 2(-7.5)S
29,756.25 = 15S
S =29,756.25/15
S = 1,983.75m
Hence the stopping distance is 1,983.75m
