Physics & Spacepreprint2026-08-09

MOMENTONICS: Momentum-Centered Science and Engineering of Dynamic Systems

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Abstract

Abstract Momentonics is proposed as a momentum-centered scientific and engineering framework for the analysis and architectural design of dynamic physical systems. The framework is based on a simple premise: momentum is not merely a consequence of force or motion, but a fundamental physical quantity whose generation, transfer, direction, synchronization, recovery, and temporal organization can be treated as engineering variables. Momentonics does not modify Newtonian mechanics, General Relativity, or Quantum Mechanics. Instead, it establishes a common engineering methodology applicable across these physical regimes. In classical mechanics, momentum is treated as a conserved quantity that can be deliberately generated, transferred, redirected, accumulated, and architectured. In relativistic physics, organized momentum corresponds to the momentum-density and momentum-flux components of the stress-energy tensor, , thereby providing a conceptual bridge between momentum engineering and tensor engineering. In quantum mechanics, momentum remains a fundamental observable and generator of spatial translations, allowing the same methodological perspective to be extended without altering the underlying formalism. The framework introduces a hierarchy of analysis and design: Momentum Quantity → Momentum Identity → Momentum Architecture → Momentum Engineering. Momentum Architecture refers to the deliberate spatial and temporal organization of momentum distributions, while Tensor Engineering refers to the intentional organization of stress-energy tensor components through such architectures. Central concepts include architectured momentum, tensor coherence, tensor resonance, tensor gain, hyperdynamic states, and architectural amplification. These concepts are formulated as experimentally testable engineering hypotheses rather than as established physical phenomena. The proposed methodology emphasizes a closed concomitant cycle in which momentum-generating systems may generate, redirect, temporarily release, recover, and reuse momentum. The framework therefore shifts the principal engineering question from “How much energy is required?” toward “How should momentum and the associated tensor state be organized to produce the desired physical response?” Energy remains an indispensable operational resource; Momentonics does not replace energetic engineering, but proposes architectured momentum as an additional design variable. The work establishes a progressive research program extending from classical momentum architectures and hyperdynamic states toward experimentally measurable tensor coherence and resonance, with longer-term objectives including tensor amplification and localized metric engineering. The framework explicitly distinguishes mathematical consistency, analytical derivation, numerical simulation, prototype measurement, independent replication, and scientific acceptance, thereby separating established physics from hypotheses requiring experimental validation. Momentonics is consequently presented not as a replacement for existing physical theories, but as a proposed engineering methodology for organizing momentum across classical, relativistic, and quantum domains and for investigating whether deliberately architectured momentum distributions can provide experimentally measurable physical effects beyond conventional energy-centered engineering. Keywords Momentonics; Momentum Architecture; Architectured Momentum; Momentum Engineering; Tensor Engineering; Stress-Energy Tensor; ; Momentum Density; Momentum Flux; Tensor Coherence; Tensor Resonance; Tensor Gain; Hyperdynamic States; Architectural Amplification; Dynamic Systems; Conservation of Momentum; Classical Mechanics; Relativistic Physics; Quantum Mechanics; Gravitomagnetism; Frame Dragging; Metric Engineering; Experimental Physics; Applied Physics; Engineering Methodology.

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View paper (DOI)Open access versionOpenAlexZenodo (CERN European Organization for Nuclear Research)Published 2026-08-09

Authors: Alvaro Fabian BRICIO ARZUBIDE

Institutions: Synopsys (Switzerland)