Question #98e74
1 Answer
Explanation:
The trick here is to realize that the time needed for the object to go from ground level to maximum height is equal to the time needed for the object to go back from maximum height to ground level.
That is the case because the object is moving under gravity, meaning that gravity slows it down while going up and accelerates it while coming down again.
In other words, the object is lanched with
So if it takes gravity a certain time to stop an object launched straight up with
Since you know that the total time of motion is equal to
This means that you can say
v_"top"^2 = v_0^2 - 2 * g * h
Here
v_"top" is the velocity of the object at maximum heightv_0 is its initial velocityg is the gravitational acceleration, equal to"9.81 m s"^(-2)
But you know that at maximum height, the velocity of the object is equal to
v_0^2 = 2 * g * h" " " "color(orange)("(*)")
Now, you can determine the initial velocity of the object by using the fact that
v_"top" = v_0 - g * t
This is equivalent to
v_0 = g * t
Use the fact that the time needed to reach maximum height is equal to
v_0 = "9.81 m s"^color(red)(cancel(color(black)(-2))) * 3color(red)(cancel(color(black)("s"))) = "29.43 m s"^(-1)
Now all you have to do is plug this value into equation
v_o^2 = 2 * g * h implies h = v_0^2/(2 * g)
and plug in your value to find
h = (29.43^2 "m"^color(red)(cancel(color(black)(2))) color(red)(cancel(color(black)("s"^(-2)))))/(2 * 9.81 color(red)(cancel(color(black)("m"))) color(red)(cancel(color(black)("s"^(-2))))) = "44.145 m"
Rounded to two sig figs, the number of sig figs you have for the total time of motion, answer will be
color(darkgreen)(ul(color(black)(h = "44 m")))
