The velocity at the maximum height of a projectile is `sqrt(3)/2` times the initial velocity of projection. The angle of projection is

The velocity at the maximum height of a projectile is half of its initial velocity of projection. The angle of projection is

The speed at the maximum height of a projectile is sqrt(3)/(2) times of its initial speed 'u' of projection Its range on the horizontal plane:-

The velocity at the maximum height of a projectile is half of its velocity of projection u . Its range on the horizontal plane is

The velocity at the maximum height of a projectile is half of its velocity of projection u . Its range on the horizontal plane is

The horizontal range of a projectile is 2 sqrt(3) times its maximum height. Find the angle of projection.

The horizontal range of projectile is 4sqrt(3) times the maximum height achieved by it, then the angle of projection is

A particle is projected from ground with speed u and at an angle theta with horizontal. If at maximum height from ground, the speed of particle is 1//2 times of its initial velocity of projection, then find its maximum height attained.

The horizontal range of a projectile is 4 sqrt(3) times its maximum height. Its angle of projection will be

The horizontal range of a projectile is 4 sqrt(3) times its maximum height. Its angle of projection will be

The speed of a projectile at its maximum height is half of its initial speed. The angle of projection is .