A particle starts from rest and has an acceleration of 2m/s2 for 10 sec. After that, it travels for 30 sec with constant speed and then undergoes a retardation of 4m/s2 and comes back to rest. The total distance covered by the particle is
A
650m
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B
750m
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C
700m
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D
800m
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Solution
The correct option is B750m Given
Initially u=0m/s;a=2m/s2;t=10s
Velocity after 10s
Using 1st equation of motion v=u+at v=0+2×10=20m/s
Distance covered in this time
Using 2nd equation of motion s=ut+12at2 s1=0+12×2×102=100m
After 10s velocity is 20m/s and it moves with this velocity for another 30s
Distance covered during this 30s s2=20×30=600m
At last it retards from velocity 20m/s to 0m/s with deceleration of 4m/s2
Distance covered during retardation
Using 3rd equation of motion v2=u2+2as 02=202−2×4×s3 s3=50m
Total distance travelled =s1+s2+s3=100+600+50=750m