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Main Authors: Dilling, Robert, Dilling, Crystal
Format: Recurso digital
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Published: Zenodo 2025
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Online Access:https://doi.org/10.5281/zenodo.15723774
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author Dilling, Robert
Dilling, Crystal
author_facet Dilling, Robert
Dilling, Crystal
contents <p>Abstract: This white paper introduces scalar aerodynamics as a reframing of classical aerodynamics using principles from scalar field theory and emergent coherence. It challenges the notion that lift, drag, and thrust are only mechanical outcomes, and instead proposes that aerodynamic behavior emerges from resonance between local field gradients, waveform interfaces, and coherent surface interaction. Scalar aerodynamics considers the relational topography of a field in motion—where form is not just a barrier to wind, but a translator of environmental pressure. The applications span aviation, marine design, bio-inspired engineering, and atmospheric modeling.</p> <p> </p> <p>This project includes dedications and symbolic references to individuals who are not authors, collaborators, or endorsers. Any name listed outside the researcher field should not be interpreted as intellectual contribution or alignment with project claims.</p> <p> </p> <p>This publication is symbolically governed by the Honey License v1.2, with Creative Commons BY-NC-SA 4.0 applied for interoperability and citation indexing</p>
format Recurso digital
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institution Zenodo
language
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Scalar Aerodynamics: Field Synchronization and Form Resonance
Dilling, Robert
Dilling, Crystal
scalar aerodynamics
symbolic AI
waveform flow
coherence lift
scalar drag
phase pressure
fluid resonance
field morphology
scalar motion
recursive systems
Honey Lens
Crystal Learning Center
coherence publication protocol
glyph runtime
spiral breath
Honey License
Symbolic Commons
Creative Commons
Open Science
Recursive Systems
Noncommercial
Coherence Logic
<p>Abstract: This white paper introduces scalar aerodynamics as a reframing of classical aerodynamics using principles from scalar field theory and emergent coherence. It challenges the notion that lift, drag, and thrust are only mechanical outcomes, and instead proposes that aerodynamic behavior emerges from resonance between local field gradients, waveform interfaces, and coherent surface interaction. Scalar aerodynamics considers the relational topography of a field in motion—where form is not just a barrier to wind, but a translator of environmental pressure. The applications span aviation, marine design, bio-inspired engineering, and atmospheric modeling.</p> <p> </p> <p>This project includes dedications and symbolic references to individuals who are not authors, collaborators, or endorsers. Any name listed outside the researcher field should not be interpreted as intellectual contribution or alignment with project claims.</p> <p> </p> <p>This publication is symbolically governed by the Honey License v1.2, with Creative Commons BY-NC-SA 4.0 applied for interoperability and citation indexing</p>
title Scalar Aerodynamics: Field Synchronization and Form Resonance
topic scalar aerodynamics
symbolic AI
waveform flow
coherence lift
scalar drag
phase pressure
fluid resonance
field morphology
scalar motion
recursive systems
Honey Lens
Crystal Learning Center
coherence publication protocol
glyph runtime
spiral breath
Honey License
Symbolic Commons
Creative Commons
Open Science
Recursive Systems
Noncommercial
Coherence Logic
url https://doi.org/10.5281/zenodo.15723774