A stone thrown from the top of a building is given an initial velocity of 20.0 m/s straight upward. The stone is launched 50.0 m above the ground, and the stone just misses the edge of the roof on its way down as shown.
(A) Using t_Ⓐ = 0 as the time the stone leaves the thrower’s hand at position Ⓐ, determine the time at which the stone reaches its maximum height. 
(B) Find the maximum height of the stone.                                                      (C) Determine the velocity of the stone when it returns to the height from which it was thrown.                                                                                            (D) Find the velocity and position of the stone at t = 5.00 s.

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2.04 s = 20.4 m 4a= -9.80 m/s? ta = 0 "a= 20.0 m/s dye = -9.80 m/s² © te = 4.08 s 'e = 0 ye = -20.0 m/s de = -9.80 m/s? O lo = 5.00 s -22.5 m 50.0 m -29.0 m/s 40=-9.80 m/s? Figure 2.14 (Example 2.10) Position, velocity, and acceleration values at various times for a freely falling stone thrown initially upward with a velocity ", = 20.0 m/s. Many of the quantities in the labels for points in the motion of the stone are calculated in the te = 5.83 s -50.0 m example. Can you verify the other val- ues that are not? Vye= -37.1 m/s dye = -9.80 m/s?