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Mechanics Course of Theoretical Physics, Volume 1 By L. D. Landau and E. M. Lifschitz Translated from the Russian by J. B. Sykes and J. S. Bell

I. THE EQUATIONS OF MOTION

  1. Generalized co-ordinates
  2. The principle of least action
  3. Galileos's relativity principle
  4. The Lagrangian for a free particle
  5. The Lagrangian for a system of particles II. CONSERVATION LAWS
  6. Energy
  7. Momentum
  8. Centre of mass
  9. Angular momentum
  10. Mechanical similarity

III. INTEGRATION OF THE EQUATIONS OF MOTION 11. Motion in one dimension 12. Determination of the potential energy from the period of oscillation 13. The reduced mass

🚧 WORK IN PROGRESS BELOW THIS POINT 🚧
  1. Motion in a central field
  2. Kepler's problem IV. COLLISION BETWEEN PARTICLES
  3. Disintegration of particles
  4. Elastic collisions
  5. Scattering
  6. Rutherford's formula
  7. Small-angle scattering V. SMALL OSCILLATIONS
  8. Free oscillations in one dimension
  9. Forced oscillations
  10. Oscillations of systems with more than one degree of freedom
  11. Vibrations of molecules
  12. Damped oscillations
  13. Forced oscillations under friction
  14. Parametric resonance
  15. Anharmonic oscillations
  16. Resonance in non-linear oscillations
  17. Motion in a rapidly oscillating field VI. MOTION OF A RIGID BODY
  18. Angular velocity
  19. The inertia tensor
  20. Angular momentum of a rigid body
  21. The equations of motion of a rigid body
  22. Eulerian angles
  23. Euler's equations
  24. The asymmetrical top
  25. Rigid bodies in contact
  26. Motion in a non-inertial frame of reference VII. THE CANONICAL EQUATIONS
  27. Hamilton's equations
  28. The Routhian
  29. Poisson brackets
  30. The action as a function of the co-ordinates
  31. Maupertuis' principle
  32. Canonical transformations
  33. Liouville's theorem
  34. The Hamilton-Jacobi equation
  35. Separation of the variables
  36. Adiabatic invariants
  37. General properties of motion in s dimensions