Answer:
2.94 s
Step-by-step explanation:
v = u + at
where:
v = final velocity = 9 m/s
u = initial velocity = 0 m/s (rest)
a = acceleration
t = time taken to reach final velocity
We can rearrange the equation to solve for time:
t = (v - u) / a
Substituting the given values, we get:
t = (9 m/s - 0 m/s) / a
Now, we need to find the acceleration. We can use another kinematic equation:
s = ut + (1/2)at^2
where:
s = displacement = 1500 m
u = initial velocity = 0 m/s
a = acceleration
t = time taken to cover the displacement
We can rearrange the equation to solve for acceleration:
a = 2(s - ut) / t^2
Substituting the given values, we get:
a = 2(1500 m - 0 m) / (1500 m / 9 m/s)^2
Simplifying, we get:
a = 3.06 m/s^2
Now, we can substitute this value of acceleration in the earlier equation to find the time taken:
t = (9 m/s - 0 m/s) / 3.06 m/s^2
Simplifying, we get:
t = 2.94 s