A body is projected with a speed `u` at an angle of `30^(@)` with the horizontal at `t=0`. The angular momentum of the body about the point of projection is `(xsqrt(3)mu^(3))/(64g)` at `t=(3u)/(4g)`. Find the value of `x` ?

A body of mass m is projected with intial speed u at an angle theta with the horizontal. The change in momentum of body after time t is :-

A particle of mass m is projected with a speed u at an angle theta with the horizontal. Find angular momentum of particle after time t about point of projection.

A body of mass m is projected with a velocity u at an angle theta with the horizontal. The angular momentum of the body, about the point of projection, when it at highest point on its trajectory is

If a particle of mass m is thrown with speed at an angle 60° with horizontal, then angular momentum of particle at highest point about point of projection is

A body of mass m is projected with velocity v at an angle of 45^(@) with the horizontal. Find the change in its momentum at the end of flight.

If a particle of mass m is thrown with speed v, at an angle 60° with horizontal, then angular momentum of particle at highest point about point of projection.

A particle of mass m is projected with a velocity mu at an angle of theta with horizontal.The angular momentum of the particle about the highest point of its trajectory is equal to :

A particle is projected at time t=0 from a point (P) with a speed v_(0) at an angle of 45^(@) to the horizontal.The magnitude of angular momentum of the particle about the point (P) at time (t=(v_(0))/(g)) is (mv_(0)^(3))/(2g sqrt(X)) .Then the value of X is?

A body is projected with speed u at an angle theta to the horizontal to have maximum range. Its velocity at the highest point will be ___.