The LAB-SST (Plasma-State Solid-State Transformer): Universal Dielectric Barrier Discharge (U-DBD) Rectification and EHD Thermal Scavenging for Hyperscale HVDC Infrastructure

This technical data package establishes the engineering blueprints, economic integration thesis, and provisional utility patent specifications for the Lawrence Aero Brick Solid-State Transformer (LAB-SST). The LAB-SST is a zero-silicon, plasma-state power transformation architecture that replaces physical Silicon Carbide (SiC) semiconductor lattices and copper electromagnetic windings with a dynamically generated atmospheric Universal Dielectric Barrier Discharge (U-DBD) plasma gateway. By driving a non-linear Townsend avalanche at an electric field threshold of E ≥ 56 kV/mm, the system acts as an asymmetric electrical valve, rectifying alternating current (AC) grid power directly into ±400V or 800V High-Voltage Direct Current (HVDC) for hyperscale computing and AI infrastructure. To eliminate the severe thermal degradation and parasitic cooling loads associated with multi-megawatt solid-state switching, the LAB-SST utilizes Electrohydrodynamic (EHD) momentum transfer to generate a solid-state convective vacuum (Δm = 0). System stability is maintained by Phase-Shifted Agentic Swarm (PSAS) logic running on edge NPU hardware, which truncates pulse widths (< 10 ns) whenever space-charge growth approaches Meek's criterion (α·d ≥ 14) to prevent thermal arc transitions. Economic Integration: Across a 100 MW hyperscale deployment, the LAB-SST obsoletes a USD 22,000,000 SiC SST installation with a USD 10,000,000 plasma-state alternative, while eliminating 10 MW in parasitic cooling load to retain USD 8,760,000 in annual cooling OpEx. This repository includes the complete USD 67,500 Bill of Materials (BOM) required for TRL-4 benchtop prototype validation. For commercial licensing, acquisition inquiries, or Option to Evaluate (OTE) agreements regarding this architecture, please contact: [email protected] Note: Accompanying system schematics are conceptual AI-assisted architectural renderings; refer to the technical specifications and patent claims for precise operational mathematics and material parameters.

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Publication Details

Journal
Zenodo (CERN European Organization for Nuclear Research)
Published
2026-09-16
DOI
https://doi.org/10.5281/zenodo.22781114
Primary Topic
Electromagnetic Launch and Propulsion Technology
Type
preprint
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The LAB-SST (Plasma-State Solid-State Transformer): Universal Dielectric Barrier Discharge (U-DBD) Rectification and EHD Thermal Scavenging for Hyperscale HVDC Infrastructure

Charles Clark Lawrence
Zenodo (CERN European Organization for Nuclear Research)
Electromagnetic Launch and Propulsion Technology
preprint

The LAB-SST (Plasma-State Solid-State Transformer): Universal Dielectric Barrier Discharge (U-DBD) Rectification and EHD Thermal Scavenging for Hyperscale HVDC Infrastructure

Charles Clark Lawrence
preprint en

Abstract

This technical data package establishes the engineering blueprints, economic integration thesis, and provisional utility patent specifications for the Lawrence Aero Brick Solid-State Transformer (LAB-SST). The LAB-SST is a zero-silicon, plasma-state power transformation architecture that replaces physical Silicon Carbide (SiC) semiconductor lattices and copper electromagnetic windings with a dynamically generated atmospheric Universal Dielectric Barrier Discharge (U-DBD) plasma gateway. By driving a non-linear Townsend avalanche at an electric field threshold of E ≥ 56 kV/mm, the system acts as an asymmetric electrical valve, rectifying alternating current (AC) grid power directly into ±400V or 800V High-Voltage Direct Current (HVDC) for hyperscale computing and AI infrastructure. To eliminate the severe thermal degradation and parasitic cooling loads associated with multi-megawatt solid-state switching, the LAB-SST utilizes Electrohydrodynamic (EHD) momentum transfer to generate a solid-state convective vacuum (Δm = 0). System stability is maintained by Phase-Shifted Agentic Swarm (PSAS) logic running on edge NPU hardware, which truncates pulse widths (< 10 ns) whenever space-charge growth approaches Meek's criterion (α·d ≥ 14) to prevent thermal arc transitions. Economic Integration: Across a 100 MW hyperscale deployment, the LAB-SST obsoletes a USD 22,000,000 SiC SST installation with a USD 10,000,000 plasma-state alternative, while eliminating 10 MW in parasitic cooling load to retain USD 8,760,000 in annual cooling OpEx. This repository includes the complete USD 67,500 Bill of Materials (BOM) required for TRL-4 benchtop prototype validation. For commercial licensing, acquisition inquiries, or Option to Evaluate (OTE) agreements regarding this architecture, please contact: [email protected] Note: Accompanying system schematics are conceptual AI-assisted architectural renderings; refer to the technical specifications and patent claims for precise operational mathematics and material parameters.

Zenodo (CERN European Organization for Nuclear Research)
Lawrence University (US)
Industry, innovation and infrastructure
Electromagnetic Launch and Propulsion Technology
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