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A car starting from rest accelerated at a rate of 0 .5 m/s up to 2 km what would be the final velocity of the car and how much time would it take to cover 1.6​​

User Francesco Pezzella
by
2.9k points

2 Answers

14 votes
14 votes

Answer:

Using third equation of kinematics


\begin{gathered}\\ \rm\longmapsto v^2=u^2+2as\end{gathered}

⟼v

2

=u

2

+2as


\begin{gathered}\\ \rm\longmapsto v^2=0^2+2(0.5)(1.6)\end{gathered}

⟼v

2

=0

2

+2(0.5)(1.6)

User Duru Can Celasun
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2.5k points
9 votes
9 votes
  • Initial velocity=u=0m/s
  • Acceleration=a=0.5m/s^2
  • Distance=s=1.6m
  • Final velocity=v=?

Using third equation of kinematics


\\ \rm\longmapsto v^2=u^2+2as


\\ \rm\longmapsto v^2=0^2+2(0.5)(1.6)


\\ \rm\longmapsto v^2=1.6


\\ \rm\longmapsto v=√(1.6)


\\ \rm\longmapsto v=0.4m/s

Now using 1st equation of motion


\\ \rm\longmapsto v=u+at


\\ \rm\longmapsto t=v-u/a


\\ \rm\longmapsto t=(0.4-0)/(0.5)


\\ \rm\longmapsto t=(4)/(5)


\\ \rm\longmapsto t=0.8s

User Nirrek
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2.8k points