Sango89- It's a very bad idea to append a new question to the end of another thread. A lot of us note when a question has been answered and then don't look at that thread again. Much better to start your own thread!
(Even if you were the person who started the thread, it's better to begin a new thread for a new question.)
Sango89 said:
A dart gun is fired while being held horizontally at a height of 1.00 m above ground level, and at rest relative to the ground. The dart from the gun travels a horizontal distance of 5.00 m.
Okay, you know the initial height was 1 and the initial vertical speed was 0 ("being held horizontally). You know that the acceleration due to gravity is -9.8 m/s
2. That tells you that the height h, at time t seconds after firing the dart, is
h(t)= -\frac{9.8}{2}t^2+ 1.0
You can solve that for the time, t, when the dart hits the ground (h(t)= 0).
You do not know the horizontal speed but, calling that "v", you how that the distance the dart travels, horizontally, is d(t)= vt. Since the dart hits the ground 5 m from the gun, d(t)= vt= 5 when t is the time you just found. Put that time in and solve for v.
Finally! The child is sliding down 45 degrees at 2 m/s. Convert that to horizontal and vertical components and add to the initial velocity (v, 0) with v as you just found.
Now you can use the same formulas as above, with these new initial velocity components to find the time when the dart hits the ground and the distance horizontally where it lands.
Anyway:
