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Transcript
Chapter 9
Linear Momentum, Systems of Particles, and
Collisions
Linear momentum (Ch. 4)
• Linear momentum (or, simply momentum)
point-like object (particle) is

p
of a


p  mv
• SI unit of linear momentum is kg*m/s
• Momentum is a vector, its direction coincides with
the direction of velocity
Newton’s Second Law revisited (Ch. 4)
• Originally, Newton formulated his Second Law in a
more general form

Fnet

dp

dt
• The rate of change of the momentum of an object is
equal to the net force acting on the object
• For a constant mass

Fnet



dp d (mv )
dv



m
 ma
dt
dt
dt
Center of mass
• In a certain reference frame we consider a system of
particles, each of which can be described by a mass
and a position vector
• For this system we can define a center of mass:

rCM 

 mi ri
i
m
i
i


 mi ri
i
M
Center of mass of two particles
• A system consists of two particles on the x axis
• Then the center of mass is

rCM 

 mi ri
i
m
i


 mi ri
i
M
i
xCM
m1 x1  m2 x2

m1  m2
yCM
m1  0  m2  0

m1  m2
0
Center of mass of a rigid body
• For a system of individual particles we have

rCM 

 mi ri
i
m
i
i
• For a rigid body (continuous assembly of matter)
with volume V and density ρ(V) we generalize a
definition of a center of mass:

rCM 


volume

r dV
volume
dV


 r dm
M
Chapter 9
Problem 41
Find the center of mass of the uniform, solid cone of height h, base radius R,
and constant density shown in the figure. (Hint: Integrate over disk-shaped
mass elements of thickness dy, as shown in the figure.)
Newton’s Second Law for a system of
particles
• For a system of particles, the center of mass is

rCM 

 mi ri
i
m

i
• Then
i


MrCM   mi ri

MaCM
i


d   mi ri 
  i 2 
dt
2

d ri
  mi 2
dt
i
2

 mi ri
i
M


2
d rCM d ( MrCM )
M

2
dt
dt 2
2
  F
  mi ai  i
i
i
Newton’s Second Law for a system of
particles
• From the previous slide:


MaCM   Fi
i

• Here Fi is a resultant force on particle i
• According to the Newton’s Third Law, the forces that
particles of the system exert on each other (internal
forces) should cancel:


MaCM  Fnet

• Here Fnet is the net force of all external forces that
act on the system (assuming the mass of the system
does not change)
Newton’s Second Law for a system of
particles


MaCM  Fnet
Linear momentum for a system of
particles
• We define a total momentum of a system as:



P   pi   mi vi
i
i
• Using the definition of the center of mass


dri


P   mi vi   mi
dt
i
i

d  mi ri
i
dt

drCM
M
dt

 MvCM
• The linear momentum of a system of particles is
equal to the product of the total mass of the system


m
r
m
r
and the velocity of the center of mass
 ii  ii

rCM 
i
m
i
i

i
M
Linear momentum for a system of
particles
• Total momentum of a system:


P  MvCM
• Taking a time derivative




dvCM
dP
 MaCM  Fnet
M
dt
dt
• Alternative form of the Newton’s Second Law for a
system of particles

dP 
 Fnet
dt
Conservation of linear momentum
• From the Newton’s Second Law

dP 
 Fnet
dt
• If the net force acting on a system is zero, then

dP
0
dt

P  const
• If no net external force acts on a system of particles,
the total linear momentum of the system is conserved
(constant)
• This rule applies independently to all components
Fnet , x  0  Px  const
Chapter 9
Problem 17
A popcorn kernel at rest in a hot pan bursts into two pieces, with masses 91 mg
and 64 mg. The more massive piece moves horizontally at 47 cm/s. Describe
the motion of the second piece.
Impulse
• During a collision, an object is acted upon by a
force exerted on it by other objects participating in
the collision
 
dp
 Fnet (t )
dt
 
dp  Fnet (t )dt

tf
ti
tf 

dp   Fnet (t )dt
• We define impulse as:
 tf 
J   Fnet (t )dt
ti
• Then (momentum-impulse theorem)



p f  pi  J
ti
Elastic and inelastic collisions
• During a collision, the total linear momentum is always
conserved if the system is isolated (no external force)
• It may not necessarily apply to the total kinetic energy
• If the total kinetic energy is conserved during the
collision, then such a collision is called elastic
• If the total kinetic energy is not conserved during the
collision, then such a collision is called inelastic
• If the total kinetic energy loss during the collision is a
maximum (the objects stick together), then such a
collision is called perfectly inelastic
Elastic collision in 1D
P  const
K  const
2
2
m1v12i m2 v22i m1v1 f m2 v2 f



2
2
2
2
m1v1i  m2 v2i  m1v1 f  m2v2 f
m1 (v1i  v1 f )(v1i  v1 f ) 
m1 (v1i  v1 f )  m2 (v2i  v2 f )
 m2 (v2i  v2 f )(v2i  v2 f )
(m1  m2 )
2m2
v1 f 
v1i 
v2 i
(m1  m2 )
(m1  m2 )
v2 f
2m1
(m2  m1 )

v1i 
v2 i
(m1  m2 )
(m1  m2 )
Elastic collision in 1D: stationary target
(m1  m2 )
2m2
v1 f 
v1i 
v2 i
(m1  m2 )
(m1  m2 )
2m1
(m2  m1 )
v2 f 
v1i 
v2 i
(m1  m2 )
(m1  m2 )
• Stationary target: v2i = 0
• Then
(m1  m2 )
v1 f 
v1i
(m1  m2 )
2m1
v2 f 
v1i
(m1  m2 )
Perfectly inelastic collision in 1D
P  const
m1v1i  m2 v2i  (m1  m2 )v f
m1v1i  m2 v2i
vf 
m1  m2
Collisions in 2D

P  const
Px  const
Py  const
Chapter 9
Problem 86
In a ballistic pendulum demonstration gone bad, a 0.52-g pellet, fired
horizontally with kinetic energy 3.25 J, passes straight through a 400-g
Styrofoam pendulum block. If the pendulum rises a maximum height of 0.50
mm, how much kinetic energy did the pellet have after emerging from the
Styrofoam?
Questions?
Answers to the even-numbered problems
Chapter 9
Problem 12
2.5 m
Answers to the even-numbered problems
Chapter 9
Problem 16
4680 km
Answers to the even-numbered problems
Chapter 9
Problem 18
– 10.6 iˆ – 2.8 jˆ m/s
Answers to the even-numbered problems
Chapter 9
Problem 78
7.95 s