A car, starting from rest, accelerates at the rate f through a distance S, then continues at constant speed for time t and then decelerates at the rate f/2 to come to rest. If the total distance traversed is 5 S, then :

A car, starting from rest, accelerates at the rate f through a distanc

1.	A car, starting from rest, accelerates at the rate f through a distance S, then continues at constant speed for time t and then decelerates at the rate f/2 to come to rest. If the total distance traversed is 5 S, then :
Answer» S=ft `S=(1)/(6)ft^(2)` `S=(1)/(2)ft^(2)` `S=(1)/(4)ft^(2)` SOLUTION :The velocity time graph of MOTION is shown below: For same change in velocity .f.t t=constant. `:. (1)/(2)ft_(1)^(2)+ft_(1)^(t)+(1)/(2)((f)/(2)).(2t_(1))^(2)=15 S` `S+ft_(1) +2S=15 S` `ft_(1)t=12 S` Now `S=(1)/(2)ft_(1)^(2)=(1)/(2)f((t^(2))/(36))=(ft^(2))/(72)`

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A car, starting from rest, accelerates at the rate f through a distance S, then continues at constant speed for time t and then decelerates at the rate f/2 to come to rest. If the total distance traversed is 5 S, then :

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