Breakdown of the Newton-Einstein Standard Gravity at Low Acceleration in Internal Dynamics of Wide Binary Stars
Abstract
A gravitational anomaly is found at weak gravitational acceleration m s from analyses of the dynamics of wide binary stars selected from the Gaia DR3 database that have accurate distances, proper motions, and reliably inferred stellar masses. Implicit high-order multiplicities are required and the multiplicity fraction is calibrated so that binary internal motions agree statistically with Newtonian dynamics at a high enough acceleration of m s. The observed sky-projected motions and separation are deprojected to the three-dimensional relative velocity and separation through a Monte Carlo method, and a statistical relation between the Newtonian acceleration (where is the total mass of the binary system) and a kinematic acceleration is compared with the corresponding relation predicted by Newtonian dynamics. The empirical acceleration relation at m s systematically deviates from the Newtonian expectation. A gravitational anomaly parameter between the observed acceleration at and the Newtonian prediction is measured to be: and at and m s, from the main sample of 26,615 wide binaries within 200 pc. These two deviations in the same direction represent a significance. The deviation represents a direct evidence for the breakdown of standard gravity at weak acceleration. At m s, the observed to Newton predicted acceleration ratio is . This systematic deviation agrees with the boost factor that the AQUAL theory predicts for kinematic accelerations in circular orbits under the Galactic external field.
Keywords
Cite
@article{arxiv.2305.04613,
title = {Breakdown of the Newton-Einstein Standard Gravity at Low Acceleration in Internal Dynamics of Wide Binary Stars},
author = {Kyu-Hyun Chae},
journal= {arXiv preprint arXiv:2305.04613},
year = {2023}
}
Comments
A revised version of the published ApJ paper (2023, 952, 128) including corrections of Figures 12, 18, 20, and Equation (4) to be published in an erratum in press: all corrections are minor and have no impact on the contents or conclusion of the paper