The Einstein-Maxwell-Particle System in the York Canonical Basis of ADM Tetrad Gravity: III) The Post-Minkowskian N-Body Problem, its Post-Newtonian Limit in Non-Harmonic 3-Orthogonal Gauges and Dark Matter as an Inertial Effect
David Alba, Luca Lusanna

TL;DR
This paper explores the Post-Minkowskian linearization of ADM tetrad gravity in the York basis, analyzing N-body systems and proposing dark matter as an inertial effect related to gauge variables in general relativity.
Contribution
It introduces a detailed study of Post-Minkowskian space-times in non-harmonic gauges, highlighting the role of the York time in gravitational and inertial effects, and suggests a novel explanation for dark matter.
Findings
Dark matter effects may be explained by inertial effects related to the York time.
At 0.5PN order, a damping term depending on the York time appears in two-body equations.
The gauge variable ${}^3{ m K}_{(1)}$ influences observable phenomena like red-shift and luminosity distance.
Abstract
We conclude the study of the Post-Minkowskian linearization of ADM tetrad gravity in the York canonical basis for asymptotically Minkowskian space-times in the family of non-harmonic 3-orthogonal gauges parametrized by the York time (the inertial gauge variable, not existing in Newton gravity, describing the general relativistic remnant of the freedom in clock synchronization in the definition of the instantaneous 3-spaces). As matter we consider only N scalar point particles with a Grassmann regularization of the self-energies and with a ultraviolet cutoff making possible the PM linearization and the evaluation of the PM solution for the gravitational field. We study in detail all the properties of these PM space-times emphasizing their dependence on the gauge variable (the non-local York time):…
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Taxonomy
TopicsRelativity and Gravitational Theory · Cosmology and Gravitation Theories · Geophysics and Gravity Measurements
