Answer:
r = < 10.6t, 27 – 4.9t², 0 >m
F < 0, -19.6, 0 > N
Step-by-step explanation:
Given the mass of the ball
m = 2.0kg , g = 9.8m/s²
H = 27m Range = x = 25m
X = Xo + Vo×t×Cosθ
y = yo + Vo×t×Sinθ -1/2gt²
But θ = 0° the ball rolls off the cliff
y = 27 + Vot ×0 – 1/2gt²
y = 27–1/2gt²
X = Xo + Vo×t×Cos0°
X = Xo + Vot
Taking the base of the cliff as Xo = 0m
X = 0 + Vot =Vot
We need to calculate the velocity Vo the initial velocity in order to find expressions for the displacement along the given axes and to do this we need to know how long this motion lasted for, t.
So to calculate t, we need to find the time the stone strikes the ground. y = 0m
So,
0 = 27 – 1/2gt²
1/2gt² = 27
t² = 27×2/g = 54/9.8
t² = 5.51
t = 2.35s
The ball travels a horizontal distance of 25m from the base of the cliff. So
X = 25 = Vo ×2.35
Vo = 25/2.35 = 10.6m/s
X = 10.6t (substituting for Vo)
y = 27 – 1/2×9.8t² = 27 – 4.9t²
Fy = -mg = -2×9.8 = ‐19.6N
So the expression for the displacement
r = < 10.6t, 27 – 4.9t², 0 >m
F < 0, -19.6, 0 > N