An object is projected with a velocitiy ...

An object is projected with a velocitiy of `20m//s` making an angle of `45^(@)` with horizontal. The equation for trajectory is `h=Ax-Bx^(2)` where `h` is height `x` is horizontal distance. `A` and `B` are constants. The ratio `A.B` is `x/0.1`. Find value of `x.(g=10m//s^(2))`

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An object is projected with a velocity of 20(m)/(s) making an angle of 45^@ with horizontal. The equation for the trajectory is h=Ax-Bx^2 where h is height, x is horizontal distance, A and B are constants. The ratio A:B is (g =ms^-2)

An object is projected with a velocity of 20 ms^(-1) making an angle of 45^(@) with horizontal. The equation for the trajectory is h = Ax -Bx^2 , where h is height, x is horizontal distance A and B are constants. The ratio A : B is (g = 10 ms^-2)

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