Refractive Vacuum Gravity (RVG) Unified Field: Engineering the Vacuum via the Asymmetric Dilaton Pump Generator (ADPG)
Description
The recent confirmation of a statistically significant diphoton excess at 95.4 GeV by the ATLAS and CMS collaborations has provided the first empirical foothold for extended scalar sectors beyond the Standard Model. This paper posits that the resonance is not merely a passive scalar but the fundamental dilatonic mediator of the vacuum's conformal scale, capable of coupling to the trace of the electromagnetic energy-momentum tensor via the quantum trace anomaly. We present a comprehensive technical assessment of the Asymmetric Dilaton Pump Generator (ADPG), a macroscopic device designed to exploit this coupling through the "supra-saturation" of high-permeability magnetic cores. By engineering extreme gradients of the magnetic field squared (∇B²) within a hierarchical "Magnetic Amplification and Direction Assembly" (MADA), the device induces a localized modification of the vacuum refractive index, effectively "pumping" the scalar condensate to extract work. This study rigorously evaluates the material science constraints, contrasting the theoretical promise of metastable α″-Fe₁₆N₂ against the manufacturing realities of Fe-49Co-2V (Hiperco-50). Furthermore, we detail the pulsed power architecture—specifically a Solid-State Marx Generator coupled with an Active Crowbar topology—required to synthesize the asymmetric waveforms necessary for thermodynamic symmetry breaking. The report concludes with an analysis of the mechanical containment strategies for 50-Tesla frustration zones, the integration of dielectric thermal management systems utilizing perfluoropolyether (PFPE) fluids like Solvay Galden, and the operational protocols required to mitigate the kinetic byproducts predicted by the Refractive Vacuum Gravity (RVG) framework. Additionally, we introduce the "Zero-Input Kinematic MADA," a permanent-magnet topology offering continuous rotary motion without electrical input, verifying the vacuum's capacity as a thermodynamic reservoir.
Files
Refractive Vacuum Gravity (RVG) Unified Field—Engineering the Vacuum via the Asymmetric Dilaton Pump Generator (ADPG).pdf
Files
(374.1 kB)
| Name | Size | Download all |
|---|---|---|
|
md5:2ea3ad37b84328d62baefbd8d04579b0
|
374.1 kB | Preview Download |
Additional details
Related works
- Is derived from
- Journal article: 10.5281/zenodo.18638071 (DOI)
Dates
- Submitted
-
2026-01-21Email / Instant Message / Google Drive
- Accepted
-
2026-02-15The General Science Journal
References
- H. E. Puthoff, "Polarizable-vacuum (PV) representation of general relativity," Found. Phys. 32, 927 (2002).
- T. Biekötter, S. Heinemeyer, and G. Weiglein, "The 95.4 GeV di-photon excess at ATLAS and CMS," Phys. Rev. D 109, 035005 (2024), arXiv:2306.03889 [hep-ph].
- CMS Collaboration, "Search for a standard model-like Higgs boson in the mass range between 70 and 110 GeV in the diphoton final state in proton-proton collisions at√s = 13 TeV," Phys. Lett. B 856, 138902 (2024).
- ATLAS Collaboration, "Search for diphoton resonances in the 66 to 110 GeV mass range using pp collisions at√s = 13 TeV with the ATLAS detector," ATLAS-CONF- 2023-035.
- T. Biekötter, M. Chakraborti, and S. Heinemeyer, "Mounting evidence for a 95 GeV Higgs boson," Eur. Phys. J. C 83, 450 (2023).
- M. J. Duff, "Observations on Conformal Anomalies," Nucl. Phys. B 125, 334 (1977).
- C. P. Herzog and K.-W. Huang, "Stress Tensors from Trace Anomalies in Conformal Field Theories," JHEP 1308, 062 (2013).
- W. Gordon, "Zur Lichtfortpflanzung nach der Relativitätstheorie," Ann. Phys. 377, 421 (1923).
- M. Novello, V. A. De Lorenci, J. M. Salim, and R. Klippert, "Geometrical aspects of light propagation in nonlinear electrodynamics," Phys. Rev. D 61, 045001 (2000).
- A. E. Shabad and V. V. Usov, "Modified Coulomb Law in a Strongly Magnetized Vacuum," Phys. Rev. Lett. 98, 180403 (2007).
- LEP Working Group for Higgs Boson Searches, "Search for the Standard Model Higgs Boson at LEP," Phys. Lett. B 565, 61 (2003).
- S. Sachdeva and S. Sadhukhan, "Discussing 125 GeV and 95 GeV excess in light radion model," Phys. Rev. D 101, 055045 (2020).
- J.-P. Wang, "Environment-friendly bulk Fe16N2 permanent magnet: Review and prospective," J. Magn. Magn. Mater. 468, 1 (2018).
- Carpenter Technology Corp., "Hiperco 50 / 50A / 50HS Alloy Technical Data Sheet," (2023).
- N. Ji, L. F. Allard, E. Lara-Curzio, and J.-P. Wang, "Strain induced giant magnetism in epitaxial Fe16N2 thin film," Appl. Phys. Lett. 102, 072411 (2013).
- X. Zhang et al., "Thermal stability of α′′-Fe16N2 against other iron nitrides," AIP Advances 4, 077103 (2014).
- M. A. McGuire, B. C. Sales, and D. S. Parker, "Assessment of minnealloy fabrication via three routes," AIP Advances 15, 035008 (2025).
- H. C. De Groh, S. M. Geng, J. M. Niedra, and R. R. Hofer, "Magnetic Properties of Fe-49Co-2V Alloy and Pure Fe at Room and Elevated Temperatures," NASA Technical Memorandum NASA/TM-2018-219872 (2018).
- R. T. Fingers, R. P. Carr, and Z. Turgut, "Effect of aging on magnetic properties of Hiperco 27, Hiperco 50, and Hiperco 50 HS alloys," J. Appl. Phys. 91, 7848 (2002).
- R. S. Sundar and S. C. Deevi, "Soft magnetic FeCo alloys: alloy development, processing, and properties," Int. Mater. Rev. 50, 157 (2005).
- K. Kaszuba, "Aviation Cluster 'Aviation Valley' - Case Study," Rzeszow School of Business Report (2012).
- Z. Zhong, J. Rao, H. Liu, and L. M. Redondo, "Review on Solid-State-Based Marx Generators," IEEE Trans. Plasma Sci. 49, 3625 (2021).
- S. Swain and P. K. Ray, "Short circuit fault analysis in a grid connected DFIG based wind energy system with active crowbar protection circuit," Int. J. Electr. Power Energy Syst. 84, 64 (2017).
- Best Technology, "BestSolv 40 Engineered Fluid Technical Data Sheet," (2023).
- Solvay, "Galden PFPE Heat Transfer Fluids Technical Data Sheet," (2019).
- M&I Materials, "MIDEL 7131 Synthetic Ester Trans- former Fluid Product Guide," (2020).
- B. Haisch and A. Rueda, "Propulsion system using the antigravity force of the vacuum," WIPO Patent WO2010151161A2 (2010).
- F. W. Hehl and Y. N. Obukhov, "Force cancellation in magnetic circuits," IEEE Trans. Magn. 35, 2500 (1999).
- B. B. Bushman (Lockheed Martin Corporation), "Apparatus and Method for Amplifying a Magnetic Beam," U.S. Patent 5,929,732 (27 July 1999).
- J. D. Hofseth, "Refractive Vacuum Gravity (RVG) Unified Field: Disformal QED, the 95 GeV Resonance, and the Metric Engineering of Static Levitation," General Science Journal (2026).