Answer to Question #327216 in Physics for gloria

Question #327216

A stone is thrown horizontally off a 25 m high building. It hits the ground a distance of 20 m from the foot of the building. What is the initial velocity of the stone?

Expert's answer

Since the velocity in horizontal direction does not change during the motion, the initial velocity can be found as follows:

"v_0 = \\dfrac{d}{t}"

where "d = 20 m" is the distance travelled in horizontal direction, and "t" is the time of fall.

From the kinematic equation

"h = \\dfrac{gt^2}{2}"

where "h=25m" is the distance travelled in vertical direction, one can express the time of fall:

"t = \\sqrt{\\dfrac{2h}{g}}"

Substituting it into the expression for velocity, obtain:

"v_0 = d\\sqrt{\\dfrac{g}{2h}} =20m\\cdot \\sqrt{\\dfrac{9.8m\/s^2}{2\\cdot 25m}} \\approx 8.9m\/s"

Answer. 8.9 m/s.

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Answer to Question #327216 in Physics for gloria

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