Two particles, one with constant velocity `50 m//s` and the other with uniform acceleration `10m//s^(2)`, start moving simultaneously from the same position in the same direction. They will be at a distance of `125m` from each other after

Two particles, one with constant velocity 50 m/s and the other with uniform acceleration 10 m//s^(2) start moving simultaneously from the same place in the same direction. They will be at a distance of 125m from each other after:

Two particles , one with constant velocity 50 m//s and the other with uniform acceleration 10 m//s^(-2) . Start moving simultaneously from the same place in the same direction. They will be at a distance of 125m other after.

When two particeles A and B are at point O, A is moving with a constant velocity 50 m/s , whle B is not moving. But B possesses a constant acceleration of 10 m/ s^(2) . After how much time they will be at a distance of 125 m ?

Two particles are projected with speed 4m//s and 3m//s simultaneously from same point as shown in the figure. Then:

Two particles are projected with speed 4 m//s and 3 m//s simultaneously from same point as shown in the figure. Then :

A car starts from rest and moves with uniform acceleration of 5 m//s^(2) for 8 sec. If the acceleration ceases after 8 seconds then find the distance covered in 12s starting from rest.

A body A moves with a uniform acceleration a and zero initial velocity. Another body B, starts from the same point moves in the same direction with a constant velocity v. The two bodies meet after a time t. The value of t is

A body starting from rest is moving with a uniform acceleration of 8m/s^(2) . Then the distance travelled by it in 5th second will be

Two bikes A and B start from a point. A moves with uniform speed 40 m//s and B starts from rest with uniform acceleration 2 m//s^2 . If B starts at t = 10 and A starts from the same point at t = 10 s , then the time during the journey in which A was ahead of B is :