A particle is projected in `x-y` plane with `y-`axis along vertical, the point of projection being origin. The equation of projectile is `y = sqrt(3) x - (gx^(2))/(2)`. The angle of projectile is ……………..and initial velocity si ………………… .

The equation of a projectile is y=sqrt(3)x-(gx^(2))/(2) the angle of projection is:-

The equation of a projectile is y = sqrt(3)x - ((gx^2)/2) the horizontal range is

A particle is projected in xy plane with y -axis along vertical, the point of projection is origin. The equation of the path is y=sqrt3x-g/2x^(2) .where y and x are in m .Then the speed of projection in ms^(-1) is

The equation of trajectory of an oblique projectile y = sqrt(3) x - (g x^(2))/(2) . The angle of projection is

The equation of projectile is y=16x-(x^(2))/(4) the horizontal range is:-

The equation of a trajectory of a projectile is y=8x-4x^(2) . The maximum height of the projectile is ?

The trajectory of a projectile in a vertical plane is y=sqrt(3)x-2x^(2) . [g=10 m//s^(2)] Angle of projection theta is :-

A particle is projected in the x-y plane with y-axis along vertical. Two second after projection the velocity of the particle makers an angle 45^(@) with the X-axis. Four second after projection. It moves horizontally. Find velocity of projection.

The equations of motion of a projectile are given by x=36tm and 2y=96t-9.8t^(2)m .The angle of projection is

The equations of motion of a projectile are given by x=36tm and 2y =96t-9.8t^(2)m . The angle of projection is