Assume the initial velocity is 60 feet/second. what is the maximum horizontal distance possible and at what angle does this occur

Question

asked Aug 23, 2021 180k views

1 Answer

Allyraza · Answer 1 · 2021-08-27T09:17:43+0000

Answer:

h = 112.5 feets

Explanation:

The equation for horizontal distance "h" in feet of a projectile with initial velocity v₀ and initial angle theta is given by :

$h=(v_o^2)/(16)\sin\theta\cos\theta$

We know that,
$2\sin\theta\cos\theta=\sin2\theta$

So,

$h=(v_o^2)/(32)\sin2\theta$

Now we need to find the maximum horizontal distance possible and at what angle does this occur.

For maximum distance angle should be 45 degrees. Som,

$h=(60^2)/(32)\sin2(45)\\\\h=112.5\ \text{feet}$

So, 112.5 feets is the maximum possible distance.