A particle starts its motion from rest under the action of a constant force. If the distance covered in first `10s` is `s_(1)` and that covered in the first `20 s` is `s_(2)`, then

A particle starts its motion from rest under the action of a constant force. If the distance covered in first 10 s is s_1 and the covered in the first 20 s is s_2 , then.

A particle start moving from rest state along a straight line under the action of a constant force and travel distance x in first 5 seconds. The distance travelled by it in next five seconds will be

A bus starts from rest and moves whith acceleration a = 2 m/s^2 . The ratio of the distance covered in 6^(th) second to that covered in 6 seconds is

A body starts from rest and moves with constant acceleration. The ratio of distance covered by the body in nth second to that covered in n second is.

A body starts from rest with a uniform acceleration of 2 m s^(-1) . Find the distance covered by the body in 2 s.

An object of mass 8 kg starts to move from rest under the action of a variable force F=3xN where x is the distance (in m) covered by the object. If initially, the position of the object is x = 2 m, then find its speed ("in m s"^(-1)) when it crosses x = 10 m.

A particle of mass 2 kg starts motion at time t = 0 under the action of variable force F = 4t (where F is in N and t is in s). The work done by this force in first two second is

A particle starts from rest and accelerates as shown in the graph .Determine (a)the particle's speed at t=10 s and t=20 s and (b)the distance travelled in the first 20 s.

A body starts from rest and is uniformly accelerated for 30 s. The distance travelled in the first 10 s is x_(1) , next 10 s is x_(2) and the last 10 s is x_(3) . Then x_(1):x_(2):x_(3) is the same as :-

A particle has a time period of 1s under the action of a certain force and 2 s under the action of another force. Find the time period when the forces are acting in the same direction simultaneously.