(a) For motion from A to B:
Distance covered = 300 m
Displacement = 300 m.
Time taken = 150 sec.
We know that, Average speed = Total distance covered ÷ Total time taken
= 300 m ÷ 150 sec = 2 ms-1
Average velocity = Net displacement ÷ time taken
= 300 m ÷ 150 sec = 2 ms-1
(b) For motion from A to C:
Distance covered = 300 + 100 = 400 m.
Displacement = AB – CB = 300 – 100 = 200 m.
Time taken = 2.5 min + 1 min = 3.5 min = 210 sec.
Therefore, Average speed = Total distance covered ÷ Total time taken
= 400 ÷ 210 = 1.90 ms-1 .
Average velocity = Net displacement ÷ time taken
= 200 m ÷ 210 sec = 0.952ms-1 .
(a) Find how far does the car travel in the first 4 seconds. Shade the area on the graph that represents the distance travelled by the car during the period. (b) Which part of the graph represents uniform motion of the car? 
(a) Which of the three is travelling the fastest? (b) Are all three ever at the same point on the road? (c) How far has C travelled when B passes A? (d) How far has B travelled by the time it passes C?