An automobile accelerates from rest at

1.3 m/s
2
for 19 s. The speed is then held
constant for 23 s, after which there is an acceleration of −0.9 m/s
2
until the automobile
stops.
What total distance was traveled?
Answer in units of km

2 answers

while accelerating:
distance=1/2 1.3 19^2
finalvelocity=1.3*18

constant speed period.
distance= finalvelocityabove*23 seconds

deaccelerating period.
Vf^2=Vi^2 + 2ad where Vf=0 and Vi equals the finalvelocityabove. Solve for distance.

time deaccelerating: 0=Vi+at solve for t

add the total distances, and if you need, add the total times.
I am still confused. For finalvelocity, where did you get 18?
Similar Questions
  1. An automobile and train move together alongparallel paths at 31.6 m/s. The automobile then undergoes a uniform acceleration of
    1. answers icon 0 answers
  2. An automobile and train move together alongparallel paths at 39.1 m/s. The automobile then undergoes a uniform acceleration of
    1. answers icon 1 answer
  3. An automobile and train move together alongparallel paths at 21.8 m/s. The automobile then undergoes a uniform acceleration of
    1. answers icon 0 answers
  4. An automobile and train move together alongparallel paths at 20.3 m/s. The automobile then undergoes a uniform acceleration of
    1. answers icon 1 answer
more similar questions