The vertical height of the projectile at the time is given by `y=4t-t^(2)` and the horizontal distance covered is given by `x=3t`. What is the angle of projection with the horizontal ?

Show that the horizontalrange is same for a projectile whether theta is the angle of projection with the horizontal or with the vertical.

In a projectile motion, the height y = sqrt(3)t - 5t^(2) + r^(3) and horizontal distance x = t + 2t^(2) -t^(3) . The angle of projection is given by

If the time of flight of a bullet over a horizontal range R is T, then the angle of projection with horizontal is -

The vertical height y and horizontal distance x of a projectile on a certain planet are given by x= (3t) m, y= (4t-6t^(2)) m where t is in seconds, Find the speed of projection (in m/s).

The horizontal range is four times the maximum height attained by a projectile. The angle of projection is

The trajectory of a projectile in a vertical plane is y=ax-bx^(2) , where a and b are constants and x and y are respectively horizontal and vertical distances of the projectile from the point of projection. The maximum height attained by the particle and the angle of projection form the horizontal are:

A projectile is projected from ground such that the maximum height attained by, it is equal to half the horizontal range.The angle of projection with horizontal would be

The horizontal and vertical distances covered by a projectile at tiem t are given by x=at and y= bt^(2)+ct , wehre a,b and c are constants. What is the magnitude of the velocity of the projectile 1 second after it is fired?