English

Frame-dragging effects in a gravitational quantum field theory

General Relativity and Quantum Cosmology 2025-04-17 v2

Abstract

Analogous to magnetism in electrodynamics, it is gravitomagnetism in relativistic gravity. Since gravity determines locally inertial frames, in general relativity (GR) and other relativistic theories of gravity, frame-dragging with source motion plays a key role in gravitomagnetism. Recently, Wu has put forward a gauge theory of gravity, called the gravitational quantum field theory (GQFT), with the gravitational force and the spin gauge force described by the gauge fields. Gao {\it et al.} ({\it Phy. Rev. D 109, 064072}) have derived the Shapiro time delay in the GQFT and given an empirical constraint from the Cassini experimental result on the dimensionless GQFT parameter γW\gamma_W to be (2.1±2.3)×105(2.1\pm 2.3)\times 10^{-5}. In this work, we derive the frame-dragging Lense-Thirring effects in the GQFT. The current precision of LARES-LAGEOS Lense-Thirring measurement gives a constraint on γW|\gamma_W| to be less than 2×1022\times 10^{-2}. This constraint is consistent with, but subdominant to, the Cassini experimental constraint. As a candidate of quantum gravity, we do not expect that the deviation from the GR value (γW=0\gamma_W=0) is large, classically. With the launch of LARES 2, the precision of the Lense-Thirring measurement is expected to increase by one order of magnitude in a couple of years. As to the Shapiro effect, current technologies have the capability to measure the γW\gamma_W parameter to a precision of 10910^{-9}.

Keywords

Cite

@article{arxiv.2411.04460,
  title  = {Frame-dragging effects in a gravitational quantum field theory},
  author = {Dongfeng Gao and Wei-Tou Ni},
  journal= {arXiv preprint arXiv:2411.04460},
  year   = {2025}
}

Comments

7 pages

R2 v1 2026-06-28T19:50:59.479Z