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Gravitation: Theories & Experiments

This lecture series explores the Einstein Equivalence Principle, tests of EEP, local Lorentz invariance, local position invariance, metric theories of gravity, and the parametrized post-Newtonian framework. Lectures include examples and experiments.

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Gravitation: Theories & Experiments

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  1. Gravitation: Theories & Experiments Clifford M. Will and Gilles Esposito-Farèse Part 1 Clifford Will James S. McDonnell Professor of Physics McDonnell Center for the Space Sciences Department of Physics Washington University, St. Louis USA http://wugrav.wustl.edu/people/CMW cmw@wuphys.wustl.edu

  2. Outline of the Lectures Lecture 1: The Einstein Equivalence Principle Lecture 2: Post-Newtonian Limit of GR Lecture 3: The Parametrized Post-Newtonian Framework Lecture 4: Tests of the PPN Parameters

  3. Outline of the Lectures • Lecture 1: The Einstein Equivalence Principle • Review of dynamics in special relativity • The weak equivalence principle • The Einstein equivalence principle • Tests of EEP • Tests of WEP • Tests of local Lorentz invariance • Tests of local position invariance • Metric theories of gravity • Non metric theories of gravity • Physics in curved spacetime • Lecture 2: Post-Newtonian Limit of GR • Lecture 3: The Parametrized Post-Newtonian Framework • Lecture 4: Tests of the PPN Parameters

  4. Special Relativistic Electrodynamics

  5. The Weak Equivalence Principle (WEP) 400 CE Ioannes Philiponus: “…let fall from the same height two weights of which one is many times as heavy as the other …. the difference in time is a very small one” 1553 Giambattista Benedetti proposed equality 1586 Simon Stevin experiments 1589-92 Galileo Galilei Leaning Tower of Pisa? 1670-87 Newton pendulum experiments 1889, 1908 Baron R. von Eötvös torsion balance experiments (10-9) 1990s UW (Eöt-Wash) 10-13 Bodies fall in a gravitational field with an accelerationthat is independent of mass, composition or internal structure

  6. The Einstein Equivalence Principle (EEP) • Test bodies fall with the same acceleration • Weak Equivalence Principle (WEP) • In a local freely falling frame, physics (non-gravitational) is independent of frame’s velocity • Local Lorentz Invariance (LLI) • In a local freely falling frame, physics (non-gravitational) is independent of frame’s location • Local Position Invariance (LPI)

  7. Tests of the Weak Equivalence Principle APOLLO (LLR) 10-13 Microscope 10-15(2008) STEP 10-18 (?)

  8. Lorentz non-invariant EM action Under a Lorentz transformation, eg

  9. Tests of Local Lorentz Invariance

  10. Light falling down a tower

  11. Tests of Local Position Invariance ACES(2010) 10-6

  12. Tests of Local Position Invariance

  13. Metric Theories of Gravity • Spacetime is endowed with a metric gmn • The world lines of test bodies are geodesics of that metric • In a local freely falling frame (local Lorentz, or inertial frame), the non-gravitational laws of physics are those from special relativity • “universal coupling principle”

  14. Metric theories, nonmetric theories and electrodynamics

  15. Metric theories, nonmetric theories and electrodynamics

  16. Metric theories, nonmetric theories and electrodynamics

  17. The Them Framework T, H, e, m are functions of an external static spherical potential U(r) Metric theory action iff with

  18. Metric theories, nonmetric theories and electrodynamics

  19. THem Framework: Violation of WEP

  20. THem Framework: Violation of LLI

  21. Standard Model Extension (SME) Kostelecky et al • Clock comparisons • Clocks vs cavities • Time of flight of high energy photons • Birefringence in vacuum • Neutrino oscillations • Threshold effects in particle physics If the universe is fundamentally isotropic D. Mattingly, Living Reviews in Relativity 8, 2005-5

  22. Electrodynamics in curved spacetime

  23. Outline of the Lectures Lecture 1: The Einstein Equivalence Principle Lecture 2: Post-Newtonian Limit of GR Lecture 3: The Parametrized Post-Newtonian Framework Lecture 4: Tests of the PPN Parameters

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