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.A. `(b^(2))/(2a),tan^(-1)(b)`B. `(a^(2))/b, tan^(-1)(2a)`C. `(a^(2))/(4b),tan^(-1)(a)`D. `(2a^(2))/b,tan^(-1)(a)`

The trajectory of a projectile in a vertical plane is `y = ax - bx^2`,

1.	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.A. `(b^(2))/(2a),tan^(-1)(b)`B. `(a^(2))/b, tan^(-1)(2a)`C. `(a^(2))/(4b),tan^(-1)(a)`D. `(2a^(2))/b,tan^(-1)(a)`
Answer» Correct Answer - C

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