Lunar Laser Ranging Tests of the Equivalence Principle
arXiv:1203.2150 · doi:10.1088/0264-9381/29/18/184004
Abstract
The Lunar Laser Ranging (LLR) experiment provides precise observations of the lunar orbit that contribute to a wide range of science investigations. In particular, time series of highly accurate measurements of the distance between the Earth and Moon provide unique information that determine whether, in accordance with the Equivalence Principle (EP), both of these celestial bodies are falling towards the Sun at the same rate, despite their different masses, compositions, and gravitational self-energies. Analyses of precise laser ranges to the Moon continue to provide increasingly stringent limits on any violation of the EP. Current LLR solutions give (-0.8 +/- 1.3) x 10^{-13} for any possible inequality in the ratios of the gravitational and inertial masses for the Earth and Moon, (m_G/m_I)_E - (m_G/m_I)_M. Such an accurate result allows other tests of gravitational theories. Focusing on the tests of the EP, we discuss the existing data and data analysis techniques. The robustness of the LLR solutions is demonstrated with several different approaches to solutions. Additional high accuracy ranges and improvements in the LLR data analysis model will further advance the research of relativistic gravity in the solar system, and will continue to provide highly accurate tests of the Equivalence Principle.
13 pages, 2 figures, 3 tables. arXiv admin note: text overlap with arXiv:gr-qc/0507083
References in corpus (2)
Cited by in corpus (38)
- Searching for dilaton dark matter with atomic clocks
- MICROSCOPE mission: final results of the test of the Equivalence Principle
- General Relativity and Cosmology: Unsolved Questions and Future Directions
- Testing Screened Modified Gravity
- Pulsars and Gravity
- Observational constraint on the radius and oblateness of the lunar core-mantle boundary
- Testing Theories of Gravity with Planetary Ephemerides
- Limits on Lorentz violation in gravity from worldwide superconducting gravimeters
- Result of the MICROSCOPE Weak Equivalence Principle test
- Casimir, Gravitational and Neutron Tests of Dark Energy
- Status of MICROSCOPE, a mission to test the Equivalence Principle in space
- Cosmological tests of modified gravity: constraints on theories from the galaxy clustering ratio
- Dilaton Solutions for Laboratory Constraints and Lunar Laser Ranging
- New test of Lorentz invariance using the MICROSCOPE space mission
- Study of eccentric binaries in Horndeski theory
- Explaining the Proton Radius Puzzle with Disformal Scalars
- Solar-system tests of the relativistic gravity
- Constraining Screened Modified Gravity by Space-borne Gravitational-wave Detectors
- Role of lunar laser ranging in realization of terrestrial, lunar, and ephemeris reference frames
- Constraint on the fifth force through perihelion precession of planets
- Euclid: Constraining linearly scale-independent modifications of gravity with the spectroscopic and photometric primary probes
- The two-body potential of Vainshtein screened theories
- MICROSCOPE Mission scenario, ground segment and data processing
- Local gravitational physics of the Hubble expansion
- Screening the Higgs portal
- Constraining dark matter sub-structure with the dynamics of astrophysical systems
- Constraining scalar dark matter with Big Bang nucleosynthesis and atomic spectroscopy
- Towards an optimal marked correlation function analysis for the detection of modified gravity
- Lunar Laser Ranging with High-Power CW Lasers
- Minimal length estimation on the basis of studies of the Sun-Earth-Moon system in deformed space
- Post-Newtonian Lagrangian of an N-body System with Arbitrary Mass and Spin Multipoles
- Proposal for a Quantum Mechanical Test of Gravity at Millimeter Scale
- Universality of free fall versus ephemeris
- Do general relativistic effects limit experiments to test the universality of free fall and the weak equivalence principle?
- Fundamental Physics in 2025: Status, Decisive Targets, and Path Forward
- What to expect from scalar-tensor space geodesy
- Constraining runaway dilaton models using joint gravitational-wave and electromagnetic observations
- Quantum Physics in Space