Equation of a projectile is given by `y = Px - Qx^(2)` , where P and Q are constants. The ratio of maximum height to the range of the projectile is

The equation of a projectile is y = ax - bx^(2) . Its horizontal range is

The equation of motion of a projectile is y = 12 x - (3)/(4) x^2 . The horizontal component of velocity is 3 ms^-1 . What is the range of the projectile ?

The equation of motion of a projectile is y = 12 x - (3)/(4) x^2 . The horizontal component of velocity is 3 ms^-1 . What is the range of the projectile ?

The trajectory of a projectile in a vertical plane is y = ax - bx^2 , where a and b are constant 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 projectile from the horizontal are.

The trajectory of a projectile in a vertical plane is y = ax - bx^2 , where a and b are constant 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 projectile from the horizontal are.

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

A projectile has a range of 40 m and reaches a maximum height of 10 m. Find the angle at which the projectile is fired.

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

The equation of projectile is y = 16 x - (5 x^2)/(4) . Find the horizontal range.

A projectile has a range of 40 m and reaches a maximum height of 10 m . Find the angle at which the projectile is fired.