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Chapter Presentation Transparencies Sample Problems Visual Concepts Standardized Test Prep Resources
Table of Contents ,[object Object],[object Object],[object Object],Thermodynamics Chapter  10
Objectives ,[object Object],[object Object],[object Object],Section 1  Relationships Between Heat and   Work Chapter  10
Heat, Work, and Internal Energy ,[object Object],[object Object],[object Object],Chapter  10 Section 1  Relationships Between Heat and   Work
Heat, Work, and Internal Energy,  continued ,[object Object],Chapter  10 Section 1  Relationships Between Heat and   Work ,[object Object]
Heat, Work, and Internal Energy,  continued ,[object Object],[object Object],Chapter  10 Section 1  Relationships Between Heat and   Work
Heat, Work, and Internal Energy,  continued ,[object Object],[object Object],[object Object],Chapter  10 Section 1  Relationships Between Heat and   Work
Thermodynamic Processes ,[object Object],[object Object],[object Object],Chapter  10 Section 1  Relationships Between Heat and   Work
Thermodynamic Processes Chapter  10 Section 1  Relationships Between Heat and   Work
Objectives ,[object Object],[object Object],[object Object],Section 2  The First Law of Thermodynamics Chapter  10
Energy Conservation ,[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics
Energy Conservation Chapter  10 Section 2  The First Law of Thermodynamics
Energy Conservation Chapter  10 Section 2  The First Law of Thermodynamics
Energy Conservation,  continued ,[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics
Signs of  Q  and  W  for a system Chapter  10 Section 2  The First Law of Thermodynamics
Sample Problem ,[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics
Sample Problem,  continued ,[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics Tip:  Work is done on the gas, so work (W) has a negative value. The internal energy increases during the process, so the change in internal energy (  U) has a positive value. Diagram: Unknown: Q  = ?
Sample Problem,  continued ,[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics Rearrange the equation to isolate the unknown: Q  =   U  +  W
Sample Problem,  continued ,[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics Tip:  The sign for the value of Q is negative. This indicates that energy is transferred as heat from the refrigerant.
Sample Problem,  continued ,[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics
First Law of Thermodynamics for Special Processes Chapter  10 Section 2  The First Law of Thermodynamics
Cyclic Processes ,[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics
Cyclic Processes,  continued ,[object Object],[object Object],Chapter  10 Section 2  The First Law of Thermodynamics ,[object Object]
Combustion Engines Chapter  10 Section 2  The First Law of Thermodynamics
The Steps of a Gasoline Engine Cycle Chapter  10 Section 2  The First Law of Thermodynamics
Refrigeration Chapter  10 Section 2  The First Law of Thermodynamics
The Steps of a Refrigeration Cycle Chapter  10 Section 2  The First Law of Thermodynamics
Thermodynamics of a Refrigerator Chapter  10 Section 2  The First Law of Thermodynamics
Objectives ,[object Object],[object Object],[object Object],Section 3  The Second Law of Thermodynamics Chapter  10
Efficiency of Heat Engines ,[object Object],[object Object],[object Object],[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics
Efficiency of Heat Engines,  continued ,[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics ,[object Object],[object Object]
Sample Problem ,[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics 1. Define Given: Diagram:   Q h  = 204 J   Q c  = 153 J Unknown   eff  = ?
Sample Problem,  continued ,[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics
Sample Problem,  continued ,[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics 4. Evaluate Only 25 percent of the energy added as heat is used by the engine to do work. As expected, the efficiency is less than 1.0.
Entropy ,[object Object],[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics
Entropy,  continued ,[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics ,[object Object]
Entropy,  continued ,[object Object],[object Object],[object Object],Chapter  10 Section 3  The Second Law of Thermodynamics
Energy Changes Produced by a Refrigerator Freezing Water Chapter  10 Section 3  The Second Law of Thermodynamics Because of the refrigerator’s less-than-perfect efficiency, the entropy of the outside air molecules increases more than the entropy of the freezing water decreases.
Entropy of the Universe Chapter  10 Section 3  The Second Law of Thermodynamics
Multiple Choice ,[object Object],[object Object],[object Object],[object Object],[object Object],Standardized Test Prep Chapter  10
Multiple Choice ,[object Object],[object Object],[object Object],[object Object],[object Object],Standardized Test Prep Chapter  10
Multiple Choice,  continued ,[object Object],[object Object],[object Object],[object Object],[object Object],Standardized Test Prep Chapter  10
Multiple Choice,  continued ,[object Object],[object Object],[object Object],[object Object],[object Object],Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 5.  Which of the figures describes a situation in which   U  < 0,  Q  < 0, and  W  = 0? A.  (a) B.  (b) C.  (c) D.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 5.  Which of the figures describes a situation in which   U  < 0,  Q  < 0, and  W  = 0? A.  (a) B.  (b) C.  (c) D.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 6.  Which of the figures describes a situation in which   U  > 0,  Q  = 0, and  W  < 0? F.  (a) G.  (b) H.  (c) J.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 6.  Which of the figures describes a situation in which   U  > 0,  Q  = 0, and  W  < 0? F.  (a) G.  (b) H.  (c) J.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 7.  Which of the figures describes a situation in which   U  < 0,  Q  = 0, and  W  > 0? A.  (a) B.  (b) C.  (c) D.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 7.  Which of the figures describes a situation in which   U  < 0,  Q  = 0, and  W  > 0? A.  (a) B.  (b) C.  (c) D.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 8.  Which of the figures describes a situation in which   U  > 0,  Q  > 0, and  W  = 0? F.  (a) G.  (b) H.  (c) J.  (d)
[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10 8.  Which of the figures describes a situation in which   U  > 0,  Q  > 0, and  W  = 0? F.  (a) G.  (b) H.  (c) J.  (d)
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Multiple Choice,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Short Response Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Short Response Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],Short Response,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Short Response,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],Short Response,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],Short Response,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],Extended Response Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],Extended Response Standardized Test Prep Chapter  10
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 15.  How much work is done by  the steam shovel in lifting the  dirt?
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 15.  How much work is done by  the steam shovel in lifting the  dirt? Answer:  3.8    10 4  J
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 16.  What is the efficiency of the  steam shovel?
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 16.  What is the efficiency of the  steam shovel? Answer:  0.19
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 17.  Assuming there is no change  in the internal energy of the  steam shovel’s engine, how  much energy is given up by  the shovel as waste heat?
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 17.  Assuming there is no change  in the internal energy of the  steam shovel’s engine, how  much energy is given up by  the shovel as waste heat? Answer:  1.62    10 5  J
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 18.  Suppose the internal energy  of the steam shovel’s engine  increases by 5.0    10 3  J. How  much energy is given up now  as waste heat?
[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 18.  Suppose the internal energy  of the steam shovel’s engine  increases by 5.0    10 3  J. How  much energy is given up now  as waste heat? Answer:  1.57    10 5  J
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],Extended Response,  continued Standardized Test Prep Chapter  10 Answer:  Disorganized energy is removed from water to form ice, but a greater amount of organized energy must become disorganized to operate the freezer.
Entropy Chapter  10 Section 3  The Second Law of Thermodynamics
Energy Changes Produced by a Refrigerator Freezing Water Chapter  10 Section 3  The Second Law of Thermodynamics

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Hp 10 win

  • 1.
  • 2. Chapter Presentation Transparencies Sample Problems Visual Concepts Standardized Test Prep Resources
  • 3.
  • 4.
  • 5.
  • 6.
  • 7.
  • 8.
  • 9.
  • 10. Thermodynamic Processes Chapter 10 Section 1 Relationships Between Heat and Work
  • 11.
  • 12.
  • 13. Energy Conservation Chapter 10 Section 2 The First Law of Thermodynamics
  • 14. Energy Conservation Chapter 10 Section 2 The First Law of Thermodynamics
  • 15.
  • 16. Signs of Q and W for a system Chapter 10 Section 2 The First Law of Thermodynamics
  • 17.
  • 18.
  • 19.
  • 20.
  • 21.
  • 22. First Law of Thermodynamics for Special Processes Chapter 10 Section 2 The First Law of Thermodynamics
  • 23.
  • 24.
  • 25. Combustion Engines Chapter 10 Section 2 The First Law of Thermodynamics
  • 26. The Steps of a Gasoline Engine Cycle Chapter 10 Section 2 The First Law of Thermodynamics
  • 27. Refrigeration Chapter 10 Section 2 The First Law of Thermodynamics
  • 28. The Steps of a Refrigeration Cycle Chapter 10 Section 2 The First Law of Thermodynamics
  • 29. Thermodynamics of a Refrigerator Chapter 10 Section 2 The First Law of Thermodynamics
  • 30.
  • 31.
  • 32.
  • 33.
  • 34.
  • 35.
  • 36.
  • 37.
  • 38.
  • 39. Energy Changes Produced by a Refrigerator Freezing Water Chapter 10 Section 3 The Second Law of Thermodynamics Because of the refrigerator’s less-than-perfect efficiency, the entropy of the outside air molecules increases more than the entropy of the freezing water decreases.
  • 40. Entropy of the Universe Chapter 10 Section 3 The Second Law of Thermodynamics
  • 41.
  • 42.
  • 43.
  • 44.
  • 45.
  • 46.
  • 47.
  • 48.
  • 49.
  • 50.
  • 51.
  • 52.
  • 53.
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  • 55.
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  • 57.
  • 58.
  • 59.
  • 60.
  • 61.
  • 62.
  • 63.
  • 64.
  • 65.
  • 66.
  • 67.
  • 68.
  • 69.
  • 70.
  • 71.
  • 72.
  • 73.
  • 74.
  • 75.
  • 76.
  • 77.
  • 78.
  • 79. Entropy Chapter 10 Section 3 The Second Law of Thermodynamics
  • 80. Energy Changes Produced by a Refrigerator Freezing Water Chapter 10 Section 3 The Second Law of Thermodynamics