A particle moves in the `x-y` plane under the action of a force `vecF` such that the value of its linear momentum `vecP` at any time `t is P_(x) = 2 cos t, P_(y) = 2 sin t`.
The angle `theta` between vecF and vecP` at a given time `t` will be:

A particle moves in the xy plane and at time t is at the point vec r= t^(2) hat i + t^(3)-2t hat j . Then find velocity vector

A particle moves in the xy plane and at time t is at the point (t^(2), t^(3)-2t) . Then find displacement , velocity and acceleration.

A particle moves in a straight line and its position x at time t is given by x^(2)=2+t . Its acceleration is given by :-

The displacement x of particle moving in one dimension, under the action of a constant force is related to the time t by the equation t = sqrt(x) +3 where x is in meters and t in seconds . Find (i) The displacement of the particle when its velocity is zero , and (ii) The work done by the force in the first 6 seconds .

The distance x of a particle moving in one dimensions, under the action of a constant force is related to time t by the equation, t=sqrt(x)+3 , where x is in metres and t in seconds. Find the displacement of the particle when its velocity is zero.

Find the equations of the tangent to the given curves at the indicated points: x= cos t , y =sin t at t = (pi)/(4)

A particle moves in the x-y plane. It x and y coordinates vary with time t according to equations x=t^(2)+2t and y=2t . Possible shape of path followed by the particle is

A particle moves in x-y plane according to the law x = 4 sin 6t and y = 4 (1-cos 6t) . The distance traversed by the particle in 4 second is ( x & y are in meters)

A particle moves on x-axis as per equation x = (t^(3)- 9t^(2) +15t +2)m . Distance travelled by the particle between t = 0 and t = 5s is

If velocity v varies with time t as v=2t^(2) , then the plot between v and t^(2) will be given as :