1. r F For a central force the position and the force are anti- parallel, so r  F=0. So, angular momentum, L, is constant N is torque Newton II, angular

2. Since the Angular Momentum, L, is constant:  Its magnitude is fixed  Its direction is fixed. By the definition of the cross product, both the position and the momentum are perpendicular to the angular momentum. The angular momentum is constant. Therefore, the position and momentum are restricted to a plane. The motion is restricted to a plane. L r p

3. r dr r+dr Show that the conservation of angular momentum implies that equal areas are swept out in equal times: r dr The green shaded area is dA The parallelogram formed by r and dr is twice the area of dA. But, by definition, the magnitude of r  dr is the area of the parallelogram. dr sin  (height)

4. Proof of Kepler’s Second Law The area swept out in time dt But dr is just v dt Divide by dt, and change v to (1/m)p The angular momentum is constant, so the rate at which area is swept out is also constant.

5. Central Forces in Polar Coordinates Let’s use the Lagrangian: Don’t confuse the Lagrangian, “L”, with the angular momentum, “L”. Motion is restricted to a plane, and the potential is that for a central force.

6. The Radial Equation

7. The Angular Equation But the term in parenthesis is just the angular momentum of a point particle, so conservation of angular momentum falls out of the constraints on the Lagrangian!

8. From the Lagrangian, we found Newton’s Laws in Polar Coordinates: Radial eqn.: Theta eqn.:

9. Obtain solutions for SHAPE, don’t need to solve for t Put it in terms of u and theta: Let Solve for r and its derivatives in terms of u and theta.

10. To reiterate: Now we have a differential eqn. of u and theta Replace r’s and thetas Define the Differential Equation for the Orbit Shape

11. Now, we plug our force law into the differential equation we have derived. The force is: This equation is similar to a simple harmonic oscillator with a constant force offset, except the independent variable is theta not time.

12. Choose theta nought so that theta equal to 0 yields the distance of closest approach “Look Ma, an ellipse!” “But Johnny, It doesn’t look like an ellipse???” “Oh Ma… don’t you know nothin’?” Manipulate the Shape Equation a Bit More:

13. We want to show that this equation is an ellipse

14. The ellipse below has the equation: a b Semimajor axis: Semiminor Axis Review of Some Basic Ellipse Properties

15. To solve for the eccentricity of an ellipse, use the defining relationship for the ellipse and solve equations for two special cases: Pythagorean Triangle When touching the right edge aa r r b a Plug (2) into (1) (1) (2)

16. r Defining equation for an ellipse  a aa r Put our Equation for the Ellipse in the Form of Our Shape Equation r'r'

17. From the last slide From the defining relationship

18. The latus rectum is the distance to a focus from a point on the ellipse perpendicular to the major axis Defining relationship for the ellipse Solve it for r Define a Pythagorean relationship Solve the resulting relationship for alpha r 2a2a  Define the Latus Rectum, 

19. So, our general equation for an ellipse is And the solution to our shape equation was They have the same form! We’ve derived Kepler’s Second Law. The trajectories of planets for a central force are described by ellipses. Finally, Show that our Central Force Yielded an Elliptical Orbit!

20. Relations Between Orbit Parameters

21. Integration of the area dA/dt over one period gives A (1) Kepler’s Second Law Use Kepler II to relate integral and l. (2) Set (1) and (2) equal Kepler’s Third Law

22. Kepler’s Third Law Derivation Continued

23. Earth presumably fits this rule… Using Earth years for time, and Astronomical Units (1 AU = 1 Earth-Sun distance) for distance renders the constants equal to 1. Look How Well The Solar System Fits Kepler’s Third Law!

24. Universality of Gravitation: Dark Matter

25. Only the mass interior to the star in question acts. Density, assuming a uniform density sphere. Keplerian Motion: All the mass of the galaxy would be assumed to be focused very close to the origin. Velocity curve, Assuming a Constant Density Sphere All the Way Out Keplerian Motion vs. Constant Density Sphere Motion r v

26. Are Central Forces Conservative?

27. Central Forces Are Conservative!

28. Energy Equation of an Orbit in a Central Field

29. Orbital Energies in an inverse Square Law

30. Integrating Orbital Energy Equation

31. Integrating Orbital Energy Equation Continued

32. Total Energy of an Orbit To fit earlier form for an ellipse Earlier Relations Total energy of the orbit.

33. E < 0Ellipse or Circlee<1 E=0Parabolae=1 E>0Hyperbolice>1 Ellipses, Parabolas, Hyperbolas

34. Maximum Velocity for An elliptical Orbit

35. Limits of Radial Motion E U is the effective potential

36. Limits Continued

37. Minimum Orbital Energy Radical ought to remain real for elliptical orbits. Value of E for which the radical is 0 Extremes of motion merge to one value.

38. Scattering and Bound States are All There Are! E > 0 E < 0

39. Energy Equation for a Central Force Again For attractive inverse squareFor repulsive inverse square

40. The Scattering Calculation Proceeds Exactly Like the Bound State Calculation But, we’re going to let k go to –Qq after we integrate

41. Integrate Both the Bound State And the Scattering Problem

42. Verify Integral in 6.10.4

43. Solve Both Bound State and Scattering Problem for u

44. Solution to the Scattering Problem Solution to the Bound State Problem Solve Both Problems for r

45. Scattering in an Inverse Square Field Solving the energy equation for r attractive Repulsive K goes to -Qq

46. b ss oo oo r min A Drawing of the Scattering Problem A small range of impact parameter scattering center Trajectory Impact parameter b

47. b ss oo oo r min A small range of impact parameter scattering center Trajectory Impact parameter b Asymptotes

48. 1 oo  /2-  o Angles