STVG-MOG Cluster Dynamics and the Cosmological $1/r^2$ Force Law from Pairwise kSZ Data
John W. Moffat

TL;DR
This paper tests Scalar-Tensor-Vector Gravity (STVG-MOG) against recent kSZ measurements, showing it can explain cluster dynamics and pairwise velocities without dark matter by reducing to an inverse-square law at large scales.
Contribution
It demonstrates that STVG-MOG can account for cluster-scale inverse-square force law and pairwise kSZ data consistency without invoking dark matter.
Findings
STVG-MOG fits cluster dynamics with specific parameters.
The theory reproduces the observed pairwise kSZ velocity trend.
Extrapolation from cluster fit to cosmological scales is consistent.
Abstract
We investigate whether Scalar-Tensor-Vector Gravity in its weak-field modified gravity form can account for the cluster-scale inverse-square force law inferred from recent kinematic Sunyaev-Zeldovich measurements of cluster pairwise motions. The starting point is the X-COP cluster fit of STVG-MOG, for which a representative baryonic cluster mass together with parameters and provides a successful description of cluster dynamics without particle dark matter. We extrapolate this fit to the separation range to , relevant for the pairwise kSZ analysis. Since the Yukawa transition length is much smaller than these separations, the STVG-MOG acceleration law reduces to an effective inverse-square form. This explains why the theory can satisfy the observed Newtonian behavior…
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