A car starting from rest, accelerates at 5.0 m/s^2 fpr an unknown time interval. If the car travels 250 m in the acceleration period, what is the time interval?

1 answer

d=1/2 a t^2 solve for time t.

Similar Questions

A 1.54×103 kg car accelerates uniformly from rest to 12.7 m/s in 2.97 s. What is the work done on the car in this time

Top answer: To find the work done on the car, we can use the work-energy principle. The work done on an object Read more.
A car starting at x = 49 m accelerates from rest at a constant rate of 8.0 m/s2.(a) How fast is it going after 10 s? (b) How far

Top answer: vf=at b. distance=49+1/2 a t^2 c. avgvelocity=vf/2 Read more.
A 1.26×103kg car accelerates uniformly from rest to 14.8 m/s in 2.79 s. What is the work done on the car in this time interval?

Top answer: Ke = (1/2)(1260)(14.8^2) Joules go ahead and integrate m a dx if you want but energy is a lot Read more.
A 1.92 × 103 kg car accelerates uniformly from rest to 12.4 m/s in 3.77 s.What is the work done on the car in this time

Top answer: work= force*distance=mass*acceleration*distance = mass (12.4/3.77)(12.4) Read more.
A 1.92 × 103 kg car accelerates uniformly from rest to 12.4 m/s in 3.77 s.What is the work done on the car in this time

Top answer: a=(V-Vo)/t = (12.4-0)/3.77 = 3.29 m/s^2 d = 0.5*3.29*3.77^2 = 23.37 m. Work = F*d = (m*g) * Read more.
A 1.53×103 kg car accelerates uniformly from rest to 13.6 m/s in 2.44 s. What is the work done on the car in this time

Top answer: Correction: a = (V-Vo)/t = 13.6-0)/2.44=5.57 m/s^2. F = m*a = 1530*5.57 = 8522.1 N. d=0.5*a*t^2 = Read more.
a car starting from rest accelerates uniformly at 5.4m/s^2. how much time does it take for the car to go 145m

Top answer: a = 5.4 v = 5.4t + c but v = 0 when t = 0 , so c = 0 v = 5.4t s = 2.7t^2 + k but s = 0, when t = 0 , Read more.
A 1.83×103 kg car accelerates uniformly fromrest to 10.7 m/s in 3.44 s. a) What is the work done on the car in this time

Top answer: It equals the kinetic energy change, (1/2) M V^2. How long it takes does not matter. Read more.
A 1.13 × 103 kg car accelerates uniformly from rest to 10.6 m/s in 3.22 s.What is the work done on the car in this time

Top answer: W = F*d. a = (V-Vo)/t a = (10.6-0)/3.22 = 3.29 m/s^2. F = m&a = 1130 * 3.29 = 3720 N. d = 0.5a*t^2 = Read more.
Starting from rest, a car accelerates down a straight road with constant acceleration a for a time t,then the direction of the

Top answer: To find the time or times at which the average velocity of the car is equal to its instantaneous Read more.