• Motion of an object is the continuous change in the position of that object. In this chapter we shall consider the motion of a particle in a straight line, which will be taken to be one of the coordinate axes.
• Consider a particle moving along a straight line (x-axis) as in figure 4.1 (a). It starts at point P, with position xi at time ti, and finishes at point Q, with position xf, at time tf. In the time interval ∆t = tf – ti . The displacement of the particle is ∆x = xf – xi . The average velocity, , of the particle during the time interval ∆t is now defined as the ratio of ∆x to ∆t , or
v
if
if
tt
xx
t
xv
4.1
From this relation, it is cleat that the velocity has a dimension of length divided by time (L/T) with a unit of m/s , cm/s, and ft/s according to the SI, cgs, and British system, respectively. Although the velocity and the displacement are vectors, we do not need to write them as vectors, since all vectors of this chapter have only one component. The average velocity, as it is clear from Equation 4.1 depends only on the initial and the final position of the particle. This means that if a particle starts point, a point and return back to the same point, its displacement, and so its average velocity is zero.Figure 4.1 shows the variation of x with t where the average velocity is given by the slope of the straight line between points P and Q.
There is a difference between distance and displacement. Distance, a scalar quantity, is the actual long of the path traveled by a particle, but displacement, a vector quantity, is the shortest distance between the initial and the final
positions of the particle.
• The instantaneous velocity, v, is defined as
In the position-time graph (figure 4.2) , v at some instant is the slope of the tangent at that instant.
The magnitude of velocity is called speed. This means that speed can never be negative.
dt
dx
t
xv
t
lim0
4.2
Example 4.1: the position of a particle varies with time according to with x in m and t and s. a) Find for the interval t = o to t = 2s , b) Find v at t = 1.5s.Solution: a) to find xi and xf we have to substitute for ti and tf in the x-t relation. i,e.
Now , from Equation 4.1 we have,
b) From Equation 4.2, we have
the instantaneous velocity at t = 1.5s is obtained by substituting for t = 1.5s in the last equation: v = 2(1.5) +3 = 6m/s
ttx 32
v
andttx ii ,032
mttx fff 106432
smtt
xxv
if
if /502
010
32 tdt
dxv
• When the velocity of a motion body changes with time, we say that the body has an acceleration. The average acceleration , during a time interval ∆t , is the ratio of the change in velocity, ∆v, to the time interval ∆t, i.e.
• The unit of the acceleration is m/s² in SI system. • In analog with the instantaneous velocity, the instantaneous acceleration, a, is
defined as the limit of the average acceleration as ∆t approaches zero. i.e.
• From equation 4.4, it is clear that the acceleration is the slope of the velocity-time graph. As (from equation 4.2), then Equation 4.4 can be rewritten as
a
if
if
tt
vv
t
va
dt
dv
t
va
t
lim0
dt
dxv
2
2
dt
xd
dt
dx
dt
d
t
va
4.5
4.4
4.3
Example 4.2
The velocity of an object moving along the x-axis varies with time according to the relation v=5t-3 with v in m/s and t in s.
A) Find during the interval t =1s to t =2s.B) find a at t = 2s. Solution a) And
So, from Equation 4.3
b) Using Equation 4.4, we have
mlstv ff 73)2(535
mlstv ii 23)1(535
2/512
27sm
tt
vva
if
if
2/5 smdt
dva
a
Example 4.3
The position-time graph of particle moving along the x-axis is given in Figure 4.2 . Find
a) during the interval t =2s to t = 5s
b) during the interval t = 0.5s to t =2s.
Solution:
a) as it is clear from the graph, at t =2s xi = 3m , and at t =5s , xf = 0,
Now from Equation 4.1, we get
b) Since v at any point is the slope of the x-t graph at the point, we have at t =0.5s , v = 6m/s, and at t = 2.5s v = 0, so
a
v
smtt
xxv
if
if /125
30
2/35.05.2
60sm
tt
vva
if
if
The simplest type of linear motion is the uniform motion in which the acceleration is constant. In such a case , so from Equation 4.3 , we obtain
where we denote by , by v , and tf, by t and take ti=0. the above equation now is
Also, because a is constant, we can write,
aa
t
vv
tt
vva
if
if 0
4.6
ivov fv
atvv o 4.7
2ovv
v
4.8
Using Equation 4.1 and 4.8 , we obtain
substituting for v from Equation 4.7 and rearrange, we obtain
Now substituting for t from Equation 4.7 into Equation 4.9 we get
hen the velocity is constant, (a = 0) it is clear from Equation 4.7 and 4.10 that
and
for simplicity, the origin of the coordinates is often chosen to be 4.7 , 4.10 and 4.11 are the fundamental three equations that govern the linear motion with constant acceleration.
2oo vv
t
xx
4.9
2
2
1attvxx oo 4.10
)(222oo xxavv 4.11
ovv vtxx o 4.12
(i) Choose your coordinates such that the particle begins its motion from the origin (xo = 0).
(ii) Decide the sense of the positive direction.
(iii)Make a list of the known quantities. Do not forget to write any vector quantity (x, v, vo, a) that a direction opposite to your positive sense as a negative quantity.
(iv)Make sure that all the quantities have the same system of units.
(v) According to what is given and what is requested, you can easily decide which equation or equations from equations 4.7, 4.10 and 4.11 you need to solve for the unknowns.
Example 4.4:
A car start from rest and moves with constant acceleration. After 12s its velocity becomes 120m/s. Find,
a) The acceleration of the car.
b) The distance the car travels in the 12s.
Solution:
Let the direction of motion be along the positive x-axis, where the car starts from the origin at t=0. now
v = 120 m/s t = 12s
• Using Equation 4.7, namely , we have
b) Equation 4.10 reads , substituting for vo , t, and a yields
atvv o
00 v
2/1012
0120sm
t
vva o
2
2
1attvx o
mx 720)12)(10)(5.0(0 2
A freely falling body is and body moving freely under the influence of gravity regardless of its initial motion. Neglecting the air resistance and assuming that the gravitational acceleration, denoted by g, is constant, we can consider the motion of a freely body as a linear motion with constant acceleration. Taking your axis to be the y-axis with the positive sense upward, Equation 4.7, 4.10 and 4.11 will apply with the substitution, x → y and a → - g, i.e,
gtvv o
2
2
1gttvyy oo
)(222oo yygvv
4.13
4.14
4.15
The first substitution is because the motion is now vertical and the negative sign in the second substitution indicates that the acceleration is downward.
Remember that the gravitational acceleration , g, is constant in magnitude and in direction and this means that the negative sign of g in Equations 4-13 – 4.15 will not be changed unless you change your positive sense, regardless of the direction of motion.
Example 4.5: an object is thrown vertically upward with an initial speed of 25m/s:
a) How long does it take to reach its maximum height?
b) What is the maximum height?
c) How long does it take to return to the ground?
d) What is its velocity just before striking the ground?
Solution:
The track of the object is shown in Figure 4.5.
a) At the maximum point v =0. from equation 4.13 we have
sg
vvt o 55.2
8.9
025
b) Using Equation 4.15, i.e. , we have
c) When returning to the ground, the displacement of the object is zero (y=0).
So from Equation 4.14, we have
Solving for t we get
d) From Equation (4.13) we have
The minus sign indicates that v is directed downward.
gyvv o 222
m
g
vvyh o 9.31
)8.9(2
025
2
222
2
2
10 gttvo
sg
vt o 1.5
9.4
252
smgtvv o /25)1.5(8.925
Example 4.6 A student, stands at the edge of the roof of a building, throws a ball vertically upward with an initial speed of 20 m/s. the building is 50m high, and the ball just missed the edge of the roof in its way down, (Figure 4.6). Find,
a) The time needed for the ball to return to the level of the roof.
b) The velocity and the position of the ball at t = 5s.
c) The velocity of the ball just before hitting the ground.
Solution:
a) When the ball returns to the level of the roof, its
displacement, y , is zero.
Substituting in Equation 4.14 we get
Now solving for t we get
2)8.9(2
1200 tt
st 08.48.9
40
b) Using Equation 4.13, , we obtain
v = 20 – 9.8 (5) = - 29m
And using Equation 4.14, , we have
y = 20(5) – 4.9 (25) = -22.5 m
c) From the equation 4.15 , we obtain
= 400 + 980 = 1380 m²/ s²
From which we find
v= 37.15 m/s
The positive solution is rejected because the ball hits the ground while falling.
gtvv o
)(222oo yygvv
2
2
1gttvy o
)50)(8.9(2)20( 22 v