s=distance=50m,time=5s,velocity=?,acceleration =?,using s=ut+1/2at square
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Explanation:
Initial velocity of the car (u)= 5 m/s
Final velocity of the car (v) = 10 m/s
Time taken for change in velocity (t)= 5 s
Therefore acceleration (a)= [10 m/s - 5 m/s]/ 5 s = 5 m/s /5s = 1 m/s²
Distance covered during these 5 seconds, is found using the relation
s = u t + ½ a t² = 5 m/s× 5 s + ½ 1 m/s² × 5² s²=25 m+ 12.5 m = 37.5 m
So car covers 37.5 m during the period its velocity changes from 5 m/s to 10 m/
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