English

Constraining Theories of Gravity by GINGER experiment

General Relativity and Quantum Cosmology 2021-03-30 v1 High Energy Physics - Theory

Abstract

The debate on gravity theories to extend or modify General Relativity is very active today because of the issues related to ultra-violet and infra-red behavior of Einstein's theory. In the first case, we have to address the Quantum Gravity problem. In the latter, dark matter and dark energy, governing the large scale structure and the cosmological evolution, seem to escape from any final fundamental theory and detection. The state of art is that, up to now, no final theory, capable of explaining gravitational interaction at any scale, has been formulated. In this perspective, many research efforts are devoted to test theories of gravity by space-based experiments. Here we propose straightforward tests by the GINGER experiment, which, being Earth based, requires little modeling of external perturbation, allowing a thorough analysis of the systematics, crucial for experiments where sensitivity breakthrough is required. Specifically, we want to show that it is possible to constrain parameters of gravity theories, like scalar-tensor or Horava-Lifshitz gravity, by considering their post-Newtonian limits matched with experimental data. In particular, we use the Lense-Thirring measurements provided by GINGER to find out relations among the parameters of theories and finally compare the results with those provided by LARES and Gravity Probe-B satellites.

Keywords

Cite

@article{arxiv.2103.15135,
  title  = {Constraining Theories of Gravity by GINGER experiment},
  author = {Salvatore Capozziello and Carlo Altucci and Francesco Bajardi and Andrea Basti and Nicolò Beverini and Giorgio Carelli and Donatella Ciampini and Angela D. V. Di Virgilio and Francesco Fuso and Umberto Giacomelli and Enrico Maccioni and Paolo Marsili and Antonello Ortolan and Alberto Porzio and Andrea Simonelli and Giuseppe Terreni and Raffaele Velotta},
  journal= {arXiv preprint arXiv:2103.15135},
  year   = {2021}
}

Comments

15 pages, 3 figures, accepted for publication in EPJP

R2 v1 2026-06-24T00:37:27.892Z