_version_ 1866901882010599424
author Wolfelsperger, Tobias
author_facet Wolfelsperger, Tobias
contents <p>Resonance-Based Subspace Dynamics (RBS-D) is a 24-part scientific framework that introduces a structural interpretation of physical systems based on coupled subspaces, resonance phenomena, and nonlinear dynamics.</p> <p>This publication (No. 15 / 24) develops the control principles of the RBS-D framework by analyzing how coupled subspace systems can be steered between different dynamical regimes through targeted modification of coupling strength, phase relations, and operator-field interactions.</p> <p>The focus lies on identifying conditions under which resonance structures can be stabilized, destabilized, or transitioned in a controlled manner, enabling systematic regime engineering within multi-scale systems.</p> <p>Within the RBS-D framework, physical systems are described in terms of:</p> <ul> <li>controllable resonance regimes</li> <li>coupling-driven system steering</li> <li>operator-mediated state manipulation</li> <li>stability-to-instability transition control</li> <li>phase-coherence engineering</li> </ul> <p>This publication extends the unified operator-field dynamics (P14) by introducing explicit control mechanisms for steering global system evolution through local structural interventions.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_19520210
institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle Resonance-Based Subspace Dynamics (RBS-D): Control Principles and Regime Engineering in Coupled Subspace Systems
Wolfelsperger, Tobias
RBS-D, theoretical-experimental interface, validation framework, physics testability, resonance system measurement, experimental physics proposal, model validation strategy, scientific verification, reproducibility framework, cross-disciplinary validation, empirical-theoretical bridge, measurement protocols, physics experimentation design, falsification framework, research methodology physics
RBS-D, Resonance-Based Subspace Dynamics, unified physics framework, subspace dynamics, resonance physics, nonlinear systems, structural coupling, emergent dynamics, theoretical physics model, multi-scale physics, cross-disciplinary physics, mathematical physics, system theory, operator dynamics, spectral analysis, experimental physics, astrophysics, plasma physics, fluid dynamics, stability theory, geometric physics
<p>Resonance-Based Subspace Dynamics (RBS-D) is a 24-part scientific framework that introduces a structural interpretation of physical systems based on coupled subspaces, resonance phenomena, and nonlinear dynamics.</p> <p>This publication (No. 15 / 24) develops the control principles of the RBS-D framework by analyzing how coupled subspace systems can be steered between different dynamical regimes through targeted modification of coupling strength, phase relations, and operator-field interactions.</p> <p>The focus lies on identifying conditions under which resonance structures can be stabilized, destabilized, or transitioned in a controlled manner, enabling systematic regime engineering within multi-scale systems.</p> <p>Within the RBS-D framework, physical systems are described in terms of:</p> <ul> <li>controllable resonance regimes</li> <li>coupling-driven system steering</li> <li>operator-mediated state manipulation</li> <li>stability-to-instability transition control</li> <li>phase-coherence engineering</li> </ul> <p>This publication extends the unified operator-field dynamics (P14) by introducing explicit control mechanisms for steering global system evolution through local structural interventions.</p>
title Resonance-Based Subspace Dynamics (RBS-D): Control Principles and Regime Engineering in Coupled Subspace Systems
topic RBS-D, theoretical-experimental interface, validation framework, physics testability, resonance system measurement, experimental physics proposal, model validation strategy, scientific verification, reproducibility framework, cross-disciplinary validation, empirical-theoretical bridge, measurement protocols, physics experimentation design, falsification framework, research methodology physics
RBS-D, Resonance-Based Subspace Dynamics, unified physics framework, subspace dynamics, resonance physics, nonlinear systems, structural coupling, emergent dynamics, theoretical physics model, multi-scale physics, cross-disciplinary physics, mathematical physics, system theory, operator dynamics, spectral analysis, experimental physics, astrophysics, plasma physics, fluid dynamics, stability theory, geometric physics
url https://doi.org/10.5281/zenodo.19520210