Pular para o conteúdo Sumário
- Preface
1Introduction: The Nature of Science and Physics
2Kinematics
3Two-Dimensional Kinematics
4Dynamics: Force and Newton's Laws of Motion
5Further Applications of Newton's Laws: Friction, Drag, and Elasticity
6Uniform Circular Motion and Gravitation
7Work, Energy, and Energy Resources
8Linear Momentum and Collisions
9Statics and Torque
10Rotational Motion and Angular Momentum
11Fluid Statics
12Fluid Dynamics and Its Biological and Medical Applications
13Temperature, Kinetic Theory, and the Gas Laws
14Heat and Heat Transfer Methods
15Thermodynamics
16Oscillatory Motion and Waves
17Physics of Hearing
18Electric Charge and Electric Field
19Electric Potential and Electric Field
20Electric Current, Resistance, and Ohm's Law
21Circuits and DC Instruments
22Magnetism
23Electromagnetic Induction, AC Circuits, and Electrical Technologies
24Electromagnetic Waves
25Geometric Optics
26Vision and Optical Instruments
27Wave Optics
28Special Relativity
29Quantum Physics
30Atomic Physics
31Radioactivity and Nuclear Physics
32Medical Applications of Nuclear Physics
33Particle Physics
34Frontiers of Physics
- AAtomic Masses
- BSelected Radioactive Isotopes
- CUseful Information
- DGlossary of Key Symbols and Notation
- Index
- change in momentum
- the difference between the final and initial momentum; the mass times the change in velocity
- conservation of momentum principle
- when the net external force is zero, the total momentum of the system is conserved or constant
- elastic collision
- a collision that also conserves internal kinetic energy
- impulse
- the average net external force times the time it acts; equal to the change in momentum
- inelastic collision
- a collision in which internal kinetic energy is not conserved
- internal kinetic energy
- the sum of the kinetic energies of the objects in a system
- isolated system
- a system in which the net external force is zero
- linear momentum
- the product of mass and velocity
- perfectly inelastic collision
- a collision in which the colliding objects stick together
- point masses
- structureless particles with no rotation or spin
- quark
- fundamental constituent of matter and an elementary particle
- second law of motion
- physical law that states that the net external force equals the change in momentum of a system divided by the time over which it changes
Glossary · College Physics · Physics Playground2.6
2.6
Problem-Solving Basics for One-Dimensional Kinematics
Problem-Solving Basics for One-Dimensional Kinematics
Glossary
Glossary
4.6
4.6
Problem-Solving Strategies
Problem-Solving Strategies
Problems & Exercises
Problems & Exercises
6.6
6.6
Satellites and Kepler’s Laws: An Argument for Simplicity
Satellites and Kepler’s Laws: An Argument for Simplicity
7.6
7.6
Conservation of Energy
Conservation of Energy
8.6
8.6
Collisions of Point Masses in Two Dimensions
Collisions of Point Masses in Two Dimensions
9.6
9.6
Forces and Torques in Muscles and Joints
Forces and Torques in Muscles and Joints
10.6
10.6
Collisions of Extended Bodies in Two Dimensions
Collisions of Extended Bodies in Two Dimensions
12.6
12.6
Motion of an Object in a Viscous Fluid
Motion of an Object in a Viscous Fluid
13.6
13.6
Humidity, Evaporation, and Boiling
Humidity, Evaporation, and Boiling
Convection
Convection
16.6
16.6
Uniform Circular Motion and Simple Harmonic Motion
Uniform Circular Motion and Simple Harmonic Motion
17.6
17.6
Hearing
Hearing
18.6
18.6
Electric Forces in Biology
Electric Forces in Biology
19.6
19.6
Capacitors in Series and Parallel
Capacitors in Series and Parallel
20.6
20.6
Electric Hazards and the Human Body
Electric Hazards and the Human Body
21.6
21.6
DC Circuits Containing Resistors and Capacitors
DC Circuits Containing Resistors and Capacitors
22.6
22.6
The Hall Effect
The Hall Effect
23.6
23.6
Back Emf
Back Emf
Section Summary
Section Summary
Image Formation by Lenses
Image Formation by Lenses
27.6
27.6
Limits of Resolution: The Rayleigh Criterion
Limits of Resolution: The Rayleigh Criterion
Relativistic Energy
Relativistic Energy
29.6
29.6
The Wave Nature of Matter
The Wave Nature of Matter
30.6
30.6
The Wave Nature of Matter Causes Quantization
The Wave Nature of Matter Causes Quantization
31.6
31.6
Binding Energy
Binding Energy
32.6
32.6
Fission
Fission
33.6
33.6
GUTs: The Unification of Forces
GUTs: The Unification of Forces
34.6
34.6
High-temperature Superconductors
High-temperature Superconductors