The Charge Conversion Factor in the Aether Physics Model: From Singular to Distributed Charge, with Rules, Exceptions, and Benchmarks

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Main Author: Thomson, David
Format: Recurso digital
Language:English
Published: Zenodo 2025
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author Thomson, David
author_facet Thomson, David
contents <p>The Aether Physics Model (APM) expresses electromagnetism with distributed magnetic charge in Quantum Measurement Units (QMU). To ingest legacy expressions that use a single elementary charge, we define a species-anchored <em>charge conversion factor</em> (CCF) and provide exact rules for applying it. Incorporating results from our eddy-current ledger, we formalize: (i) numerator/denominator rules for one net power of charge; (ii) dynamic vs.\ substrate mappings; (iii) the squared-rule for MFR/MFF classes; and (iv) five unit <em>exceptions</em> (conductance, capacitance, inductance, permeability, permittivity) that require no CCF. A consolidated mapping table gives instrument-ready conversions entirely in QMU. As a benchmark, the QMU potential unit $\mathrm{potn}$ aligns exactly with the electron rest-energy per charge (the GRSEP anchor) when mapped to SI.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_17451188
institution Zenodo
language eng
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle The Charge Conversion Factor in the Aether Physics Model: From Singular to Distributed Charge, with Rules, Exceptions, and Benchmarks
Thomson, David
Aether Physics Model
QMU
Charge Conversion Factor
Electromagnetism
SI Units
Quantum Metrology
GRSEP
Distributed Charge
<p>The Aether Physics Model (APM) expresses electromagnetism with distributed magnetic charge in Quantum Measurement Units (QMU). To ingest legacy expressions that use a single elementary charge, we define a species-anchored <em>charge conversion factor</em> (CCF) and provide exact rules for applying it. Incorporating results from our eddy-current ledger, we formalize: (i) numerator/denominator rules for one net power of charge; (ii) dynamic vs.\ substrate mappings; (iii) the squared-rule for MFR/MFF classes; and (iv) five unit <em>exceptions</em> (conductance, capacitance, inductance, permeability, permittivity) that require no CCF. A consolidated mapping table gives instrument-ready conversions entirely in QMU. As a benchmark, the QMU potential unit $\mathrm{potn}$ aligns exactly with the electron rest-energy per charge (the GRSEP anchor) when mapped to SI.</p>
title The Charge Conversion Factor in the Aether Physics Model: From Singular to Distributed Charge, with Rules, Exceptions, and Benchmarks
topic Aether Physics Model
QMU
Charge Conversion Factor
Electromagnetism
SI Units
Quantum Metrology
GRSEP
Distributed Charge
url https://doi.org/10.5281/zenodo.17451188