Starting from rest, acceleration of a particle is `a = 2 (t-1)`. The velocity of the particle at `t = 5s` is

Starting from rest, acceleration of a particle is a = 2t (t-1) . The velocity of the particle at t = 5s is

Starting from rest, the acceleration of a particle is a=2(t-1). The velocity of the particle at t=5s is :-

Starting from rest, the acceleration of a particle is a=2(t-1) . The velocity (i.e. v=int" a dt " ) of the particle at t=10 s is :-

A particle starts from rest and moves with an acceleration of a={2+|t-2|}m//s^(2) The velocity of the particle at t=4 sec is

The acceleration of a'particle starting from rest, varies with time according to the relation a=kt+c . The velocity of the particle after time t will be :

Acceleration-time graph of a particle moving in a straight line is as shown in figure. At time t = 0, velocity of the particle is zero. Find (a) average acceleration in a time interval from t = 6 s to t = 12 s, (b) velocity of the particle at t = 14 s.

The acceleration of a particle which starts from rest varies with time according to relation a=2t+3. The velocity of the particle at time t would be

A particle is moving with a velocity of v=(3+ 6t +9t^2) m/s . Find out (a) the acceleration of the particle at t=3 s. (b) the displacement of the particle in the interval t=5s to t=8 s.

A particle is given an initial velocity of vecu=(3 hati+4 hatj) m//s . Acceleration of the particle is veca=(3t^(2) +2 thatj) m//s^(2) . Find the velocity of particle at t=2s.