English

Spacecraft Clocks and Relativity: Prospects for Future Satellite Missions

Earth and Planetary Astrophysics 2014-04-07 v2 General Relativity and Quantum Cosmology Atomic Physics Geophysics

Abstract

The successful miniaturization of extremely accurate atomic clocks invites prospects for satellite missions to perform precise timing experiments. This will allow effects predicted by general relativity to be detected in Earth's gravitational field. In this paper we introduce a convenient formalism for studying these effects, and compute the fractional timing differences generated by them for the orbit of a satellite capable of accurate time transfer to a terrestrial receiving station on Earth, as proposed by planned missions. We find that (1) Schwarzschild perturbations would be measurable through their effects both on the orbit and on the signal propagation, (2) frame-dragging of the orbit would be readily measurable, and (3) in optimistic scenarios, the spin-squared metric effects may be measurable for the first time ever. Our estimates suggest that a clock with a fractional timing inaccuracy of 101610^{-16} on a highly eccentric Earth orbit will measure all these effects, while for a low Earth circular orbit like that of the Atomic Clock Ensemble in Space Mission, detection will be more challenging.

Keywords

Cite

@article{arxiv.1402.6698,
  title  = {Spacecraft Clocks and Relativity: Prospects for Future Satellite Missions},
  author = {Raymond Angélil and Prasenjit Saha and Ruxandra Bondarescu and Philippe Jetzer and Andreas Schärer and Andrew Lundgren},
  journal= {arXiv preprint arXiv:1402.6698},
  year   = {2014}
}

Comments

Accepted for publication in Physical Review D. Typos corrected

R2 v1 2026-06-22T03:16:38.586Z