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Phase-Based Gravitational Dynamics and Synthetic Metrics: An Epistemic Analysis of Quantum Interferometry and Spatio-Temporal Modulation in the Context of UAT/UPC
2026-09-24

Recent experimental developments provide important empirical context for phase-based approaches to physical dynamics. The direct measurement of quantum phase accumulation during free fall using a Quantum Galileo Interferometer (QGI) reported by Dobkowski et al., Science Advances (2026) DOI: 10.1126/sciadv.adj8028, demonstrates that gravitational dynamics can be directly encoded in a measurable phase evolution. Independently, the realization of magnetic-free non-reciprocity through parametric phase modulation reported by Estep, Sounas, Soric, and Alù, Nature Physics (2014) DOI: 10.1038/nphys3134, demonstrates that the relative temporal phase of spatially distributed resonators ( for ) can generate synthetic angular momentum and modify collective dynamics. These results do not validate the Universal Applied Time (UAT) or Unified Principle of Causality (UPC) frameworks. Both experiments were developed and interpreted within established frameworks. Nevertheless, they provide robust experimental precedents for treating discrete phase geometry and temporal modulation as primary experimental variables. Within this context, this work analyzes the eight-coil rotational matrix developed under the UAT/UPC program as an exploratory macroscopic platform. The system implements a synthetic rotational configuration with discrete phase increment , where physical coil opposition is replaced by controlled phase relationships. For eight ideal equal-amplitude components, . Any measured residual must therefore be decomposed into instrumental, phase, frequency, electronic, and potentially structural contributions. During development, a candidate residual was identified under phase/frequency confrontation, alongside a central-coil RMS scale . Both values are treated strictly as candidate invariants requiring independent reproduction. This work explicitly defines the falsification protocol (ideal signals, real channels, random permutation, phase inversion, and frequency variation ) and the hypotheses : residual explained by systematics vs : persists after controls. The detector, calibration code and methodology are documented in the 8+1 coil report. Related identifiers: UAT: 10.5281/zenodo.17729221 UPC: 10.5281/zenodo.18210808 Resonant Hunter v8.4: 10.5281/zenodo.18446712 8+1 Coil Rotational Detector & Calibration: 10.5281/zenodo.19646349 Alù et al. (2014): 10.1038/nphys3134 Dobkowski et al. (2026): 10.1126/sciadv.adj8028

Ссылка для цитирования:

Percudani M. A. 2026. Phase-Based Gravitational Dynamics and Synthetic Metrics: An Epistemic Analysis of Quantum Interferometry and Spatio-Temporal Modulation in the Context of UAT/UPC. PREPRINTS.RU. https://doi.org/10.24108/preprints-3116474

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