Answer:
x = 6 √ 2y / 9.8 , v = √(2y g)
Explanation:
This is a projectile launching exercise.
There is no acceleration on the horizontal axis
vₓ = x / t
x = vₓ t
on the axis and the initial speed is zero ([tex]v_{oy}[/tex] = 0)
y = ½ g t²
t = √ 2y / g
t = √2 y / 9.8
this is the time to go down
v = vo - gt
v = 0 - g √ 2y / g
v = √2y g
the horizontal distance is
x = 6 √ 2y / 9.8
in order to complete the calculations you need at the height of the cliff
