The Kinematic Laws of Cosmic Expansion: A Unified Origin for Redshift and Local Screening

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The paper proposes a kinematic cosmology framework in which the observable universe is a static spatial manifold with a vacuum state undergoing thermodynamic relaxation, described by “Universal Mobility Decay” as a monotonic decline in the vacuum’s momentum-translation capacity. Using a “Mobility-Coupled Directional Momentum” equation, the author claims this adiabatic longitudinal momentum relaxation reproduces the cosmological redshift relation and co-evolves gauge and gravitational couplings to screen local bound states from the cosmic decay. The paper further argues that the decay changes the density of states in frequency space to preserve the Planckian Cosmic Microwave Background spectrum and addresses the Horizon and Tolman surface brightness problems without inflation or expanding metrics, while presenting the framework as a preprint without peer-reviewed validation. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

We introduce a kinematic framework for cosmology based on the Momentum-First principles, proposing that the observable universe is defined by a static spatial manifold populated by a vacuum state undergoing thermodynamic relaxation. Instead of metric expansion, we identify the core driver of cosmic evolution as Universal Mobility Decay —a monotonic decline in the vacuum's "Translation Yield," or kinematic capacity. We introduce the Mobility-Coupled Directional Momentum  as the governing equation for cosmic kinematics, where the vacuum's ability to support momentum dipoles decays over time. This mechanism forces an adiabatic relaxation of longitudinal momentum, reproducing the cosmological redshift relation. We derive the "Sectoral Co-Scaling Laws," proving that fundamental gauge and gravitational couplings co-evolve with the vacuum to maintain the stability of local bound states (atoms and planetary orbits), effectively screening them from the cosmic decay. Furthermore, we demonstrate that the decay of the kinematic yield alters the density of states in frequency space, exactly compensating for the static volume to preserve the Planckian spectrum of the Cosmic Microwave Background. Finally, we show that this framework resolves the Horizon and Tolman Surface Brightness problems without inflation or expanding metrics.
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The Kinematic Laws of Cosmic Expansion: A Unified Origin for Redshift and Local Screening | Authorea try { document.documentElement.classList.add('js'); } catch (e) { } var _gaq = _gaq || []; _gaq.push(['_setAccount', 'G-8VDV14Y67G']); _gaq.push(['_trackPageview']); (function() { var ga = document.createElement('script'); ga.type = 'text/javascript'; ga.async = true; ga.src = ('https:' == document.location.protocol ? 'https://ssl' : 'http://www') + '.google-analytics.com/ga.js'; var s = document.getElementsByTagName('script')[0]; s.parentNode.insertBefore(ga, s); })(); Skip to main content Preprints Collections Wiley Open Research IET Open Research Ecological Society of Japan All Collections About About Authorea FAQs Contact Us Quick Search anywhere Search for preprint articles, keywords, etc. Search Search ADVANCED SEARCH SCROLL This is a preprint and has not been peer reviewed. Data may be preliminary. 21 November 2025 V3 Latest version Share on The Kinematic Laws of Cosmic Expansion: A Unified Origin for Redshift and Local Screening Author : Arne Klaveness 0009-0004-1536-3055 [email protected] Authors Info & Affiliations https://doi.org/10.22541/au.175043621.10689034/v3 248 views 137 downloads Contents Abstract Supplementary Material Information & Authors Metrics & Citations View Options References Figures Tables Media Share Abstract We introduce a kinematic framework for cosmology based on the Momentum-First principles, proposing that the observable universe is defined by a static spatial manifold populated by a vacuum state undergoing thermodynamic relaxation. Instead of metric expansion, we identify the core driver of cosmic evolution as Universal Mobility Decay —a monotonic decline in the vacuum's "Translation Yield," or kinematic capacity. We introduce the Mobility-Coupled Directional Momentum as the governing equation for cosmic kinematics, where the vacuum's ability to support momentum dipoles decays over time. This mechanism forces an adiabatic relaxation of longitudinal momentum, reproducing the cosmological redshift relation. We derive the "Sectoral Co-Scaling Laws," proving that fundamental gauge and gravitational couplings co-evolve with the vacuum to maintain the stability of local bound states (atoms and planetary orbits), effectively screening them from the cosmic decay. Furthermore, we demonstrate that the decay of the kinematic yield alters the density of states in frequency space, exactly compensating for the static volume to preserve the Planckian spectrum of the Cosmic Microwave Background. Finally, we show that this framework resolves the Horizon and Tolman Surface Brightness problems without inflation or expanding metrics. Supplementary Material File (expansion.pdf) Download 325.21 KB Information & Authors Information Version history V1 Version 1 20 June 2025 V2 Version 2 07 July 2025 V3 Version 3 21 November 2025 Copyright This work is licensed under a Creative Commons Attribution 4.0 International License Keywords cosmic expansion cosmological screening cosmology m-theory / bfss matrix model momentum-first Authors Affiliations Arne Klaveness 0009-0004-1536-3055 [email protected] Independent Researcher View all articles by this author Metrics & Citations Metrics Article Usage 248 views 137 downloads .FvxKWukQNSOunydq8rnd { width: 100px; } Citations Download citation Arne Klaveness. The Kinematic Laws of Cosmic Expansion: A Unified Origin for Redshift and Local Screening. Authorea . 21 November 2025. DOI: https://doi.org/10.22541/au.175043621.10689034/v3 If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. 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