General Transfer-of-State Model (GTOSM) Cosmic Motion and Angular Momentum as Emergent Statistics of Transfer-of-State

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contents <p><strong>General Transfer-of-State Model (GTOSM)</strong>: <br><em><strong>Cosmic Motion and Angular Momentum as Emergent Statistics of Transfer-of-State</strong></em> is a standalone follow-up based on the General Transfer-of-State Model<strong> </strong>that resolves a specific tension in fundamental physics: <strong>motion and angular momentum</strong> are treated as primitive “given” structures in many formalisms (or derived via variational principles that implicitly assume the very stability they are meant to explain).</p> <p><strong>GTOSM </strong>associates it with a <strong>concrete microscopic mechanism</strong>. It identifies the substance of the tension as a compatibility problem: sustained propagation requires flux continuity, but dimensional adjustment (the only energetic act in GTOSM) locally disrupts continuity. From this, the model supplies a reliable selection rule with <strong>no teleology—only transfer paths</strong> whose adjustment rate stays below the lattice disruption threshold remain dynamically admissible; high-adjustment paths self-terminate.</p> <p>On that foundation, the paper provides solutions rather than mere definitions. It shows how “rest” is the isotropic fixed point of transfer statistics for a coherence domain, and how momentum is nothing more than persistent anisotropy in successful, admissible transfers once constraints exist. It then explains where the constraints come from: bias is an enforced W0 boundary pattern installed by non-optimal transfers, and heterogeneous MD routing plus integrated W0 impedance can suppress W1 availability to the point of a pseudo-horizon, forcing independent domains to unify into a composite coherence domain. In composites, only anti-symmetric bias can remain internal; non-cancelling components are exposed and discharged, and the permitted boundary reassembly responses are vortex-class. Nonzero winding becomes the operational signature of angular momentum, with the sign contingent rather than preferred. Finally, the paper shows how rotational anisotropy imprints outward through repeated interactions (entrainment), yielding a GTOSM-native account of how rotation can arise and propagate in extended systems without assuming conserved “spin” or invoking least-action optimization.<br><br>Version note (v2) This version removes the mouse in the "cheese wheel" analogy from the description.<br><br></p> <p dir="ltr">Standalone follow-up work on: Necsanu, R. (2025). General Transfer-of-State Model (GTOSM): A Minimum Structural Reconstruction of Quantum Mechanics, Gravitation, and Cosmology. <br>Zenodo.<a href="https://doi.org/10.5281/zenodo.17992660"> https://doi.org/10.5281/zenodo.17992660</a><br><br>ORCID: <a href="https://orcid.org/0009-0009-1281-9180">https://orcid.org/0009-0009-1281-9180</a></p>
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spellingShingle General Transfer-of-State Model (GTOSM) Cosmic Motion and Angular Momentum as Emergent Statistics of Transfer-of-State
Necsanu, Radu
motion
angular momentum
cosmic angular momentum
galactic rotation
galaxy formation
structure formation
protocloud dynamics
halo dynamics
emergent rotation
emergent angular momentum
emergent motion
momentum
transfer of state
coherence domains
wave-functions as coherence domains
bias
W0 constraints
impedance
pseudo-horizon
mass-demand (MD)
gravitational gradient
flux routing
dimensional adjustment
hit-miss statistics
emergent mechanics
foundational kinematics
informational physics
minimal structural models
GTOSM
<p><strong>General Transfer-of-State Model (GTOSM)</strong>: <br><em><strong>Cosmic Motion and Angular Momentum as Emergent Statistics of Transfer-of-State</strong></em> is a standalone follow-up based on the General Transfer-of-State Model<strong> </strong>that resolves a specific tension in fundamental physics: <strong>motion and angular momentum</strong> are treated as primitive “given” structures in many formalisms (or derived via variational principles that implicitly assume the very stability they are meant to explain).</p> <p><strong>GTOSM </strong>associates it with a <strong>concrete microscopic mechanism</strong>. It identifies the substance of the tension as a compatibility problem: sustained propagation requires flux continuity, but dimensional adjustment (the only energetic act in GTOSM) locally disrupts continuity. From this, the model supplies a reliable selection rule with <strong>no teleology—only transfer paths</strong> whose adjustment rate stays below the lattice disruption threshold remain dynamically admissible; high-adjustment paths self-terminate.</p> <p>On that foundation, the paper provides solutions rather than mere definitions. It shows how “rest” is the isotropic fixed point of transfer statistics for a coherence domain, and how momentum is nothing more than persistent anisotropy in successful, admissible transfers once constraints exist. It then explains where the constraints come from: bias is an enforced W0 boundary pattern installed by non-optimal transfers, and heterogeneous MD routing plus integrated W0 impedance can suppress W1 availability to the point of a pseudo-horizon, forcing independent domains to unify into a composite coherence domain. In composites, only anti-symmetric bias can remain internal; non-cancelling components are exposed and discharged, and the permitted boundary reassembly responses are vortex-class. Nonzero winding becomes the operational signature of angular momentum, with the sign contingent rather than preferred. Finally, the paper shows how rotational anisotropy imprints outward through repeated interactions (entrainment), yielding a GTOSM-native account of how rotation can arise and propagate in extended systems without assuming conserved “spin” or invoking least-action optimization.<br><br>Version note (v2) This version removes the mouse in the "cheese wheel" analogy from the description.<br><br></p> <p dir="ltr">Standalone follow-up work on: Necsanu, R. (2025). General Transfer-of-State Model (GTOSM): A Minimum Structural Reconstruction of Quantum Mechanics, Gravitation, and Cosmology. <br>Zenodo.<a href="https://doi.org/10.5281/zenodo.17992660"> https://doi.org/10.5281/zenodo.17992660</a><br><br>ORCID: <a href="https://orcid.org/0009-0009-1281-9180">https://orcid.org/0009-0009-1281-9180</a></p>
title General Transfer-of-State Model (GTOSM) Cosmic Motion and Angular Momentum as Emergent Statistics of Transfer-of-State
topic motion
angular momentum
cosmic angular momentum
galactic rotation
galaxy formation
structure formation
protocloud dynamics
halo dynamics
emergent rotation
emergent angular momentum
emergent motion
momentum
transfer of state
coherence domains
wave-functions as coherence domains
bias
W0 constraints
impedance
pseudo-horizon
mass-demand (MD)
gravitational gradient
flux routing
dimensional adjustment
hit-miss statistics
emergent mechanics
foundational kinematics
informational physics
minimal structural models
GTOSM
url https://doi.org/10.5281/zenodo.18098770