Test of the gravitational redshift with stable clocks in eccentric orbits: application to Galileo satellites 5 and 6
arXiv:1508.06159 · doi:10.1088/0264-9381/32/23/232003
Abstract
The Einstein Equivalence Principle (EEP) is one of the foundations of the theory of General Relativity and several alternative theories of gravitation predict violations of the EEP. Experimental constraints on this fundamental principle of nature are therefore of paramount importance. The EEP can be split in three sub-principles: the Universality of Free Fall (UFF), the Local Lorentz Invariance (LLI) and the Local Position Invariance (LPI). In this paper we propose to use stable clocks in eccentric orbits to perform a test of the gravitational redshift, a consequence of the LPI. The best test to date was performed with the Gravity Probe A (GP-A) experiment in 1976 with an uncertainty of . Our proposal considers the opportunity of using Galileo satellites 5 and 6 to improve on the GP-A test uncertainty. We show that considering realistic noise and systematic effects, and thanks to a highly eccentric orbit, it is possible to improve on the GP-A limit to an uncertainty around after one year of integration of Galileo 5 and 6 data.
13 pages, 5 figures, accepted in Classical and Quantum Gravity as a Fast Track Communication
References in corpus (7)
- The Confrontation between General Relativity and Experiment
- Test of the Equivalence Principle Using a Rotating Torsion Balance
- Equivalence Principle Violations and Couplings of a Light Dilaton
- Quantum Tests of the Einstein Equivalence Principle with the STE-QUEST Space Mission
- Improved tests of Local Position Invariance using 87Rb and 133Cs fountains
- Test of Time Dilation Using Stored Li+ Ions as Clocks at Relativistic Speed
- Breaking of the equivalence principle in the electromagnetic sector and its cosmological signatures
Cited by in corpus (15)
- Atomic Clocks for Geodesy
- A gravitational redshift test using eccentric Galileo satellites
- General Relativity and Cosmology: Unsolved Questions and Future Directions
- Tests of Lorentz symmetry in the gravitational sector
- Lorentz Symmetry Violations from Matter-Gravity Couplings with Lunar Laser Ranging
- Gravitational Redshift Tests with Atomic Clocks and Atom Interferometers
- Probing the gravitational redshift with an Earth-orbiting satellite
- Gravitational redshift test with the future ACES mission
- Low-frequency Gravitational Wave Detection via Double Optical Clocks in Space
- Velocity-dependent inverse cubic force and solar system gravity tests
- Space-time Dynamics Estimation from Space Mission Tracking Data
- Test of the Equivalence Principle in the Dark Sector on Galactic Scales
- Testing fundamental physics with photon frequency shift
- Filtration of the gravitational frequency shift in the radio links communication with Earth's satellite
- Quantum Physics in Space