Kinematics:Free-fall

    Naturally, objects fall. This is due to gravity of the earth. In all what it will follow, we assume that air resistence has a negligible effect on a falling object, so that the approximation of the object's acceleration is due entirely to gravity is valid. Inthis case the fall is called free-fall motion.
    Galileo Galilei (1564-1642) made quantitative studies to find that the acceleration due to gravity is constant during the fall. Further, this acceleration is the same for any falling object. The magnitude of this accelation is represented by the symbol g and has the value of 9.8 m/s².

1. Free-fall acceleration

To describe free-fall, we choose the y-axis along the direction of motion with a vector unit j directed upward. Therefore, the acceleration of a free-fall object is a = - g j.

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free fall vector acceleration:

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The sign minus is explicit. It choose only that the acceleration "a" is downward whereas the unit vector j is upward. the value g = 9.8 m/s² is positive.

2. Equations of free-fall

2.1. General formula

Since the acceleration a is constant, we can write the following vector equations :
a = dv/dt
Integrating with respect to t to gives:
v(t) = at + v_o.
    (1) A second integral gives:
y(t) = (1/2) a t² + v_ot + y_o     (2)

If we choose + y upward, then a = - g. y_o and v_o depend on their initial values and intial directions .

Therefore
the general eqation for a free-fall motion is:
y(t) = - (1/2) g t² + v_ot + y_o

Inserting t given by the equation (1) into the equation (2) gives v² - v_o² = -2g(y - y_o)

2.2. Equation of free-fall

Without initial velocity, v_o = 0, and by choosing the origin of distances at the point y_o = 0, we obtain: y(t) = - (1/2) g t²

2.3. Examples:

Example 1

If an object is thrown vertically upward with initial speed v_o. We want to determine (a) the maximum height the object can reach and (b) the time required for the object to reach this maximum height.


Use the following formula: v(t) = -g t + v_o

v² - v_o² = - 2g(y - y_o)

Let the origin of the coordinate frame be at the release point, and t = 0 the instant the ball is released. So _o = 0. At the time t_max the object reach it maximum height, its speed is zero. Then the latter two equations become:

0 = - g t_max + v_o
- v_o² = - 2gy_max

Therefore:
t_max = v_o/g, and
y_max = v_o²/2g


Example 2

A stone is thrown upward at a velocity of speed v_o = 25 m/s, from the base of a cliff 25 m high. How high is the highest point of the stone from the top of the cliff?



We use the formula:
v(B)² - v(A)² = 2 a (x(A) - x(B))
from the highest point B to the ground A. That is:
0² - v_o² = - 2 g ( 25 + h - 0)
or:
- v_o² = - 2 g (25 + h)

Therefore:
h = (v_o² /2g) - 25 = (25)² /2 x 9.8) - 25 = 6.9 m.