Consistent cosmological structure formation on all scales in relativistic extensions of MOND
Daniel B Thomas, Ali Mozaffari, Tom Zlosnik

TL;DR
This paper develops a unified method to analyze structure formation across all scales in relativistic extensions of MOND, enabling consistent testing against the standard cosmological model.
Contribution
It introduces a coherent framework for studying cosmological structure formation in relativistic MOND theories, exemplified with generalized Einstein-Aether models.
Findings
The same free function influences background, linear, and non-linear regimes.
MONDian galactic behavior does not necessarily imply MONDian cosmological behavior.
The derived equations enable consistent N-body simulations in these theories.
Abstract
General relativity manifests very similar equations in different regimes, notably in large scale cosmological perturbation theory, non-linear cosmological structure formation, and in weak field galactic dynamics. The same is not necessarily true in alternative gravity theories, in particular those that possess MONDian behaviour ("relativistic extensions" of MOND). In these theories different regimes are typically studied quite separately, sometimes even with the freedom in the theories chosen differently in different regimes. If we wish to properly and fully test complete cosmologies containing MOND against the CDM paradigm then we need to understand cosmological structure formation on all scales, and do so in a coherent and consistent manner. We propose a method for doing so and apply it to generalised Einstein-Aether theories as a case study. We derive the equations that…
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Taxonomy
TopicsCosmology and Gravitation Theories · Geophysics and Gravity Measurements · Black Holes and Theoretical Physics
