Presentation is loading. Please wait.

Presentation is loading. Please wait.

Lecture 7 Chapter 9 Systems of Particles Wednesday 7-16-03 Warm-up problem Puzzle Question: Cite two possible reasons why it appears that some basket ball.

Published byEmil McBride Modified over 8 years ago

Similar presentations

Presentation on theme: "Lecture 7 Chapter 9 Systems of Particles Wednesday 7-16-03 Warm-up problem Puzzle Question: Cite two possible reasons why it appears that some basket ball."— Presentation transcript:

1 Lecture 7 Chapter 9 Systems of Particles Wednesday 7-16-03 Warm-up problem Puzzle Question: Cite two possible reasons why it appears that some basket ball players and dancers have a greater hang time. Physlets

2 Topics Center of mass Newton’s 2nd law for a system of particles Linear momentum, 2nd law in terms of P Conservation of P

3 Center of mass The center of a body or a system of bodies is the point that moves as though all of the mass were concentrated there and all external forces were applied there.

4

5 Center of Mass Why is it important? For any rigid body the motion of the body is given by the motion of the cm and the motion of the body around the cm. As an example find the center of mass of the following system x m M. x cm d m x cm = M (d-x cm ) x cm = M/(m + M) d

6 Problem 9.3 2 dimensions Find x cm and y cm x cm M = m 1 x 1 + m 2 x 2 + m 3 x 3 y cm M = m 1 y 1 + m 2 y 2 + m 3 y 3 x cm 15 = 3*0 + 4*2 + 8*1 x cm = 16/15 = 1.1 m y cm 15 = 3*0 +4*1 + 8*2 y cm = 20/15 = 1.33 m.

7 If the 8 kg mass increases, how does the cm change? x cm =(m 1 x 1 + m 2 x 2 + m 3 x 3 )/(m 1 +m 2 +m 3 ) When m 3 gets very large, suppose we neglect the other masses. x cm ~(m 3 x 3 )/(m 3 ) ~ x 3 The center of mass moves towards the large object as it should

8 Center of Mass for a system of particles x cm = (m 1 x 1 + m 2 x 2 + m 3 x 3 )/M

9 Newton’s Second Law for a System of particles: F net = Ma cm take d/dt on both sides take d/dt again Identify ma as the force on each particle

10 Linear Momentum form of Newton’s 2nd Law Important because it is a vector quantity that is conserved in interactions. Now take derivative d/dt of

11 Law of Conservation of Linear Momentum If F net = 0 on a closed system where no mass enters or leaves the system, then dP/dt = 0 or P = constant. P i = P f for a closed isolated system Also each component of the momentum P x,P y,P z is also constant since F x, F y, and F z all = 0 If one component of the net force is not 0, then that component of momentum is not a constant. For example, consider the motion of a horizontally fired projectile. The y component of P changes while the horizontal component is fixed after the bullet is fired.

12 Air track examples Two carts connected by a spring. Set them into oscillation by pulling them apart and releasing them from rest. Note cm does not move. Now repeat with spring between two carts. Analogous to exploding mass. Again observers in two different inertial reference frames will measure different values of momentum, but both will agree that momentum is conserved. Note if the net force vanishes in one inertial frame it will vanish in all inertial frames

13 F(t) -F(t) Change in momentum of ball on left or right.

14 Andy Rodick has been clocked at serving a tennis ball up to 149 mph(70 m/s). The time that the ball is in contact with the racquet is about 4 ms. The mass of a tennis ball as is about 300 grams. F avg = J/  t =  p/  t  p =70( 0.3) - 0 = 21 kg-m/s F avg = 21/0.004 = 5000 Newtons What is the acceleration of the ball? a = F avg /m = 5000N/0.3 kg = 16,667 m/s 2 What is the average force exerted by the racquet on the ball? What distance the racquet go through while the ball is still in contact? V 2 f - V 2 i =2ax x = V 2 f /2a = (70) 2 /2(16667) = 0.15 m

15 hihi Initial -v f Before bounce vfvf After bounce BOUNCING BALL E = PE = mgh E = KE = 1/2mv 2 hfhf

16 Measuring velocities and heights of balls bouncing from a infinitely massive hard floor Type of Ball Coefficient of Restitution (C.O.R.) Rebound Energy/ Collision Energy (R.E./C.E.) Superball0.900.81 Racquet ball0.850.72 Golf ball0.820.67 Tennis ball0.750.56 Steel ball bearing0.650.42 Baseball0.550.30 Foam rubber ball0.300.09 Unhappy ball0.100.01 Beanbag0.050.002 R.E./C.E.= H i /H f Almost elastic collision Almost inelastic collision C.O.R. = V f /V i

17 Conservation of Momentum In a closed isolated system containing a collision, the linear momentum of each colliding body may change but the total linear momentum P of the system can not change, whether the collision is elastic or inelastic. F net = 0, dP/dt = 0, Hence, P = constant. Each x,y, and z component of the momentum is a constant.

18 One Dimension Collision m 1 v 1i + m 2 v 2i = m 1 v 1f + m 2 v 2f Total momentum before = Total momentum after 1/2 m 1 v 1i 2 = 1/2 m 1 v 1f 2 + 1/2 m 2 v 2f 2 Kinetic energy is conserved too.

19 Balls bouncing off massive floors, we have m 2 >>m 1 m1m1 m2m2

20 Lecture 8 Chapter 10 Collisions Thursday 7-17-03

21 Colliding pool balls The excutive toy m 2 = m 1

22 Two moving colliding objects: Problem 45 m 1 v 1i + m 2 v 2i = m 1 v 1f + m 2 v 2f 1/2 m 1 v 1i 2 + 1/2 m 2 v 2i 2 = 1/2 m 1 v 1f 2 + 1/2 m 2 v 2f 2 -v v v 1f v m1m1 m2m2 Just before each hits the floor Just after the big ball bounced Just after the little ball bounced off the big ball

23 -v v For m 2 =3m 1, v 1f = 8/4V =2V superball has twice as much speed. How high does it go? 4 times higher V 1f =2V V 2f =0

24 -v v How high does it go? V 1f =3V V 2f = -V 9 times higher For maximum height consider m 2 >> m 1 V 1f =3V V 2f = -V

Download ppt "Lecture 7 Chapter 9 Systems of Particles Wednesday 7-16-03 Warm-up problem Puzzle Question: Cite two possible reasons why it appears that some basket ball."

Similar presentations

Momentum.

Momentum.
By Cade and Georgia.  Newton’s laws of motion, including an understanding of force, mass and weight, acceleration and inertia applied to sport and physical.

By Cade and Georgia.  Newton’s laws of motion, including an understanding of force, mass and weight, acceleration and inertia applied to sport and physical.
Momentum Momentum is conserved – even in collisions with energy loss. Collisions Center of mass Impulse Chapter 9: Linear Momentum and Collisions Reading.

Momentum Momentum is conserved – even in collisions with energy loss. Collisions Center of mass Impulse Chapter 9: Linear Momentum and Collisions Reading.
Linear Momentum and Second Newton’s Law Definition of momentum: Change in momentum: 2 nd Newton’s Law: Definition of acceleration: We can write 2 nd Newton’s.

Linear Momentum and Second Newton’s Law Definition of momentum: Change in momentum: 2 nd Newton’s Law: Definition of acceleration: We can write 2 nd Newton’s.
Linear Momentum and Collisions

Linear Momentum and Collisions
Impulse, Momentum and Collisions

Impulse, Momentum and Collisions
Chapter 9. Impulse and Momentum

Chapter 9. Impulse and Momentum
Center of Mass and Linear Momentum

Center of Mass and Linear Momentum
Momentum Impulse, Linear Momentum, Collisions Linear Momentum Product of mass and linear velocity Symbol is p; units are kgm/s p = mv Vector whose direction.

Momentum Impulse, Linear Momentum, Collisions Linear Momentum Product of mass and linear velocity Symbol is p; units are kgm/s p = mv Vector whose direction.
PHYS16 – Lecture 14 Momentum and Collisions October 8, 2010.

PHYS16 – Lecture 14 Momentum and Collisions October 8, 2010.
AP Physics Review Ch 7 – Impulse and Momentum

AP Physics Review Ch 7 – Impulse and Momentum
2008 Physics 2111 Fundamentals of Physics Chapter 9 1 Fundamentals of Physics Chapter 9a Systems of Particles 1.A Special Point 2.The Center of Mass 3.Newton’s.

2008 Physics 2111 Fundamentals of Physics Chapter 9 1 Fundamentals of Physics Chapter 9a Systems of Particles 1.A Special Point 2.The Center of Mass 3.Newton’s.
Ch 9 Linear Momentum and Collisions 9.1 Linear Momentum and Its Conservation Linear – traveling along a path p = mv single particle dp/dt = d(mv)/dt =

Ch 9 Linear Momentum and Collisions 9.1 Linear Momentum and Its Conservation Linear – traveling along a path p = mv single particle dp/dt = d(mv)/dt =
Chapter 7: Linear Momentum (p)

Chapter 7: Linear Momentum (p)
Section 73 Momentum.

Section 73 Momentum.
Momentum and Impulse.

Momentum and Impulse.
Chapter 9, System of Particles Center of Mass Momentum and Conservation Impulse Rocket.

Chapter 9, System of Particles Center of Mass Momentum and Conservation Impulse Rocket.
1.4 MOMENTUM IN TWO DIMENSIONS. Momentum momentum of an object to be the product of mass (m) and velocity (v). Momentum is a vector quantity with SI Units.

1.4 MOMENTUM IN TWO DIMENSIONS. Momentum momentum of an object to be the product of mass (m) and velocity (v). Momentum is a vector quantity with SI Units.
Chapter 7 Momentum and Collisions. Momentum Newton’s Laws give a description of forces ○ There is a force acting or their isn’t ○ But what about in between.

Chapter 7 Momentum and Collisions. Momentum Newton’s Laws give a description of forces ○ There is a force acting or their isn’t ○ But what about in between.
Chapter 7 Linear Momentum

Chapter 7 Linear Momentum

Similar presentations

Ads by Google