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Kinematics in One Dimension Chapter 2
Kinematics  deals with the concepts that  are needed to describe motion. Dynamics  deals with the effect that forces have on motion. Together, kinematics and dynamics form the branch of physics known as  Mechanics.
2.1  Displacement
2.1  Displacement
2.1  Displacement
2.1  Displacement
2.2  Speed and Velocity Average speed  is the distance traveled divided by the time required to cover the distance. SI units for speed:  meters per second  (m/s)
2.2  Speed and Velocity Example 1  Distance Run by a Jogger How far does a jogger run in 1.5 hours (5400 s) if his  average speed is 2.22 m/s?
2.2  Speed and Velocity Average velocity  is the displacement divided by the elapsed time.
2.2  Speed and Velocity Example 2  The World’s Fastest Jet-Engine Car Andy Green in the car  ThrustSSC  set a world record of  341.1 m/s in 1997.  To establish such a record, the driver  makes two runs through the course, one in each direction, to nullify wind effects.  From the data, determine the average velocity for each run.
2.2  Speed and Velocity
2.3  Acceleration The notion of  acceleration  emerges when a change in  velocity is combined with the time during which the  change occurs.
2.3  Acceleration DEFINITION OF AVERAGE ACCELERATION
2.3  Acceleration Example 3   Acceleration and Increasing Velocity Determine the average acceleration of the plane.
2.3  Acceleration
2.3  Acceleration Example 3   Acceleration and Decreasing  Velocity
2.4  Equations of Kinematics for Constant Acceleration Equations of Kinematics for Constant Acceleration
2.4  Equations of Kinematics for Constant Acceleration Five kinematic variables: 1. displacement,  x 2. acceleration (constant),  a 3. final velocity (at time  t ),  v 4. initial velocity,  v o 5. elapsed time, t
2.4  Equations of Kinematics for Constant Acceleration
2.4  Equations of Kinematics for Constant Acceleration Example 6  Catapulting a Jet Find its displacement.
2.4  Equations of Kinematics for Constant Acceleration
2.5  Applications of the Equations of Kinematics Reasoning Strategy 1.  Make a drawing. 2. Decide which directions are to be called positive (+) and  negative (-). 3.  Write down the values that are given for any of the five kinematic variables. 4.  Verify that the information contains values for at least three of the five kinematic variables.  Select the appropriate equation. 5.  When the motion is divided into segments, remember that the final velocity of one segment is the initial velocity for the next. 6.  Keep in mind that there may be two possible answers to a  kinematics problem.
2.5  Applications of the Equations of Kinematics Example 8  An Accelerating Spacecraft A spacecraft is traveling with a velocity of +3250 m/s.  Suddenly the retrorockets are fired, and the spacecraft begins to slow down with an acceleration whose magnitude is 10.0 m/s 2 .  What is the velocity of the spacecraft when the displacement of the craft is +215 km, relative to the point where the retrorockets began  firing? x a v v o t +215000 m -10.0 m/s 2 ? +3250 m/s
2.5  Applications of the Equations of Kinematics x a v v o t +215000 m -10.0 m/s 2 ? +3250 m/s
2.6  Freely Falling Bodies In the absence of air resistance, it is found that all bodies at the same location above the Earth fall vertically with  the same acceleration.  This idealized motion is called  free-fall   and the acceleration of a freely falling body is called the  acceleration due to  gravity .
2.6  Freely Falling Bodies
2.6  Freely Falling Bodies Example 10  A Falling Stone A stone is dropped from the top of a tall building.  After 3.00s of free fall, what is the displacement  y  of the stone?
2.6  Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s 3.00 s
2.6  Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s 3.00 s
2.6  Freely Falling Bodies Example 12  How High Does it Go? The referee tosses the coin up with an initial speed of 5.00m/s. In the absence if air resistance, how high does the coin go above its point of release?
2.6  Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s +5.00 m/s
2.6  Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s +5.00 m/s
2.6  Freely Falling Bodies Conceptual Example 14  Acceleration Versus Velocity There are three parts to the motion of the coin.  On the way up, the coin has a vector velocity that is directed upward and has decreasing magnitude. At the top of its path, the coin  momentarily has zero velocity.  On the way down, the coin has downward-pointing velocity with an increasing magnitude. In the absence of air resistance, does the acceleration of the coin, like the velocity, change from one part to another?
2.6  Freely Falling Bodies Conceptual Example 15  Taking Advantage of Symmetry Does the pellet in part  b  strike the ground beneath the cliff with a smaller, greater, or the same speed as the pellet in part  a ?
Position-Time Graphs ,[object Object],[object Object],[object Object]
Plotting a Distance-Time Graph ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Where and When ,[object Object],[object Object],[object Object],[object Object],[object Object]
Interpret this graph…
Describing in Words
Describing in Words ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Accelerated Motion ,[object Object],[object Object],[object Object]
Accelerated Motion ,[object Object],[object Object]
Velocity ,[object Object],[object Object],[object Object],[object Object]
Velocity-Time Graphs ,[object Object],[object Object],[object Object]
Constant Velocity ,[object Object],[object Object]
Changing Velocity ,[object Object],[object Object]
Positive and Negative Velocity ,[object Object],[object Object]
Speeding Up and Slowing Down ,[object Object],[object Object]
Two Stage Rocket ,[object Object],[object Object]
Displacement from a Velocity-Time Graph ,[object Object],[object Object]
2.7  Graphical Analysis of Velocity and Acceleration
2.7  Graphical Analysis of Velocity and Acceleration
2.7  Graphical Analysis of Velocity and Acceleration

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AP Physics - Chapter 2 Powerpoint

  • 1. Kinematics in One Dimension Chapter 2
  • 2. Kinematics deals with the concepts that are needed to describe motion. Dynamics deals with the effect that forces have on motion. Together, kinematics and dynamics form the branch of physics known as Mechanics.
  • 7. 2.2 Speed and Velocity Average speed is the distance traveled divided by the time required to cover the distance. SI units for speed: meters per second (m/s)
  • 8. 2.2 Speed and Velocity Example 1 Distance Run by a Jogger How far does a jogger run in 1.5 hours (5400 s) if his average speed is 2.22 m/s?
  • 9. 2.2 Speed and Velocity Average velocity is the displacement divided by the elapsed time.
  • 10. 2.2 Speed and Velocity Example 2 The World’s Fastest Jet-Engine Car Andy Green in the car ThrustSSC set a world record of 341.1 m/s in 1997. To establish such a record, the driver makes two runs through the course, one in each direction, to nullify wind effects. From the data, determine the average velocity for each run.
  • 11. 2.2 Speed and Velocity
  • 12. 2.3 Acceleration The notion of acceleration emerges when a change in velocity is combined with the time during which the change occurs.
  • 13. 2.3 Acceleration DEFINITION OF AVERAGE ACCELERATION
  • 14. 2.3 Acceleration Example 3 Acceleration and Increasing Velocity Determine the average acceleration of the plane.
  • 16. 2.3 Acceleration Example 3 Acceleration and Decreasing Velocity
  • 17. 2.4 Equations of Kinematics for Constant Acceleration Equations of Kinematics for Constant Acceleration
  • 18. 2.4 Equations of Kinematics for Constant Acceleration Five kinematic variables: 1. displacement, x 2. acceleration (constant), a 3. final velocity (at time t ), v 4. initial velocity, v o 5. elapsed time, t
  • 19. 2.4 Equations of Kinematics for Constant Acceleration
  • 20. 2.4 Equations of Kinematics for Constant Acceleration Example 6 Catapulting a Jet Find its displacement.
  • 21. 2.4 Equations of Kinematics for Constant Acceleration
  • 22. 2.5 Applications of the Equations of Kinematics Reasoning Strategy 1. Make a drawing. 2. Decide which directions are to be called positive (+) and negative (-). 3. Write down the values that are given for any of the five kinematic variables. 4. Verify that the information contains values for at least three of the five kinematic variables. Select the appropriate equation. 5. When the motion is divided into segments, remember that the final velocity of one segment is the initial velocity for the next. 6. Keep in mind that there may be two possible answers to a kinematics problem.
  • 23. 2.5 Applications of the Equations of Kinematics Example 8 An Accelerating Spacecraft A spacecraft is traveling with a velocity of +3250 m/s. Suddenly the retrorockets are fired, and the spacecraft begins to slow down with an acceleration whose magnitude is 10.0 m/s 2 . What is the velocity of the spacecraft when the displacement of the craft is +215 km, relative to the point where the retrorockets began firing? x a v v o t +215000 m -10.0 m/s 2 ? +3250 m/s
  • 24. 2.5 Applications of the Equations of Kinematics x a v v o t +215000 m -10.0 m/s 2 ? +3250 m/s
  • 25. 2.6 Freely Falling Bodies In the absence of air resistance, it is found that all bodies at the same location above the Earth fall vertically with the same acceleration. This idealized motion is called free-fall and the acceleration of a freely falling body is called the acceleration due to gravity .
  • 26. 2.6 Freely Falling Bodies
  • 27. 2.6 Freely Falling Bodies Example 10 A Falling Stone A stone is dropped from the top of a tall building. After 3.00s of free fall, what is the displacement y of the stone?
  • 28. 2.6 Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s 3.00 s
  • 29. 2.6 Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s 3.00 s
  • 30. 2.6 Freely Falling Bodies Example 12 How High Does it Go? The referee tosses the coin up with an initial speed of 5.00m/s. In the absence if air resistance, how high does the coin go above its point of release?
  • 31. 2.6 Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s +5.00 m/s
  • 32. 2.6 Freely Falling Bodies y a v v o t ? -9.80 m/s 2 0 m/s +5.00 m/s
  • 33. 2.6 Freely Falling Bodies Conceptual Example 14 Acceleration Versus Velocity There are three parts to the motion of the coin. On the way up, the coin has a vector velocity that is directed upward and has decreasing magnitude. At the top of its path, the coin momentarily has zero velocity. On the way down, the coin has downward-pointing velocity with an increasing magnitude. In the absence of air resistance, does the acceleration of the coin, like the velocity, change from one part to another?
  • 34. 2.6 Freely Falling Bodies Conceptual Example 15 Taking Advantage of Symmetry Does the pellet in part b strike the ground beneath the cliff with a smaller, greater, or the same speed as the pellet in part a ?
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  • 51. 2.7 Graphical Analysis of Velocity and Acceleration
  • 52. 2.7 Graphical Analysis of Velocity and Acceleration
  • 53. 2.7 Graphical Analysis of Velocity and Acceleration