Answer to Question #296450 in Mechanics | Relativity for yan

a. We have to solve the equation h = h₀ + V_0yt - ½gt² when h = 0 m as the ball hits the ground, h₀ is the height of the building, and the velocity will be V_0y = V₀•sin(30°)=(20 m/s)(½)=10 m/s. Using that information, the quadratic equation that has to be solved for the time t is "45+10t-4.9035t^2= 0." Solving that we find the time as t = 4.216 s.

b. The velocity will be the combination of the velocity for the x and y axis. First:

"V_{0x}= V_{0}\\cos(30\u00b0)=(20\\frac{m}{s})(\\frac{\\sqrt{3}}{2})=17.32\\frac{m}{s}\n\\\\ V_{0y}= V_{0}\\sin(30\u00b0)=(20\\frac{m}{s})(\\frac{1}{2})=10\\frac{m}{s}"

Then we have to consider that the new velocity for the y axis has to be calculated while the other velocity remains constant:

"V_y=V_{0y}-gt\n\\\\ V_y=[10-(9.807)(4.216)]\\frac{m}{s}=-31.346\\frac{m}{s}"

The total velocity will be "V=\\sqrt{V_y^2+V_x^2}\n\\\\ V=\\sqrt{(-31.346\\frac{m}{s})^2+(17.32\\frac{m}{s})^2}\n\\\\ V= 35.81\\frac{m}{s}"

c. The distance that the stone travels through the x axis will be equal to "d = V_{0x}t= (17.32\\frac{m}{s})(4.216\\,s)=73.02\\,m"

In conclusion, the stone travels a time of 4.216 s, hits the ground with a velocity of 35.81 m/s, and hits the ground at a distance of 73.02 m from the place where the stone was thrown.