Consortium Layer 1/4: Heavy SCADA & High-Density Compute Interconnect

Front-End Engineering Design for Industrial Island Microgrids

700V DC native busbar topology, direct compute rectification, and dielectric liquid immersion cooling eliminating multi-stage AC conversion losses and multi-year utility interconnect queues for AI compute clusters.

Governed under Noel’s Law of Structural Vulnerability • Standard: SIC-SSOT-SOP-MASTER-2026-09-27

Core Electrical & Thermal Systems

Engineered for sustained island operation, eliminating conversion loss and delivering uninterrupted power to high-density compute clusters.

DIRECT DC BUS 84.8% EFFICIENCY

Native 700V DC Busbars

Direct compute rectification eliminating AC step-down transformers and multi-stage inverter losses. Feeds power directly from local generation to RIOS-CC-1000 GPU racks.

Bus Topology: 700V DC Solid Copper
Parasitic Loss: < 2.0% Total Drop
Coupling: Direct GPU Power Rails
SOLID-STATE ATS < 16MS TRANSFER

Sub-16ms Automatic Switching

Ultra-fast solid-state island transfer switching executing within less than one electrical cycle, guaranteeing zero voltage drops, memory corruption, or AI training halts.

Transfer Speed: < 16ms (< 1 Cycle)
GPU State: Zero Checkpoint Loss
Actuation: Hardware-Attested Isolation
LIQUID IMMERSION 1.05 PUE

RIOS-CC-1000 8-GPU Racks

High-density dielectric fluid immersion chassis designed for 8 enterprise GPUs per enclosure. Eliminates fan vibration, dust ingestion, and thermal throttling in harsh environments.

Cooling Fluid: Synthetic Hydrocarbon
Density: 8 GPUs per 4U Enclosure
Noise / Fans: 0 dB / Fanless Silent
CO-GENERATION 50°C–65°C EXPORT

Hydronic District Heat Loops

Plate heat exchanger loops capturing 100% of rejected GPU thermal energy at 50°C–65°C, exporting heat to agricultural soil warming, district heating, or biomass pre-drying.

Thermal Reclaim: 100% of GPU Waste Heat
Supply Temp: 50°C to 65°C Constant
Integration: Soil Warming & Drying
SKU: STUDY: FEED_ENG_DEPOSIT STANDARD: FAR PART 31 / DCAA SF 1408

FEED Study & 700V DC Interconnect Engineering

$15,000.00 – $50,000.00

Front-End Engineering Design (FEED) for industrial island microgrids, AI compute clusters, and behind-the-meter generation assets requiring direct 700V DC interconnects.


Engineering SOW & Technical Deliverables:

  • Electrical Single-Line Diagrams (SLD): Stamped engineering drawings detailing the native 700V DC busbar topology, breaker coordination, and protection schemes.
  • Sub-16ms ATS Transient Modeling: Hardware-in-the-loop simulation verifying seamless island transitions under full GPU compute load.
  • RIOS-CC-1000 Immersion Integration: Fluid dynamics modeling, pump head calculations, and dielectric fluid containment specifications.
  • Hydronic Thermal Export SOW: Heat exchanger sizing and thermodynamic piping diagrams for agricultural or municipal district heating.
  • Certified Microgrid District Filing: Statutory engineering documentation preparing legal boundaries under West Virginia Code §5B-2-21.
Request 700V Interconnect Scope & SOW → Billed via milestone enterprise invoices. Job-costed ledger isolation compliant with FAR Part 31 / DCAA SF 1408 standards.
TOPOLOGY BENCHMARK

Thermodynamic & Electrical Performance Matrix

Direct comparison between legacy centralized AC data centers and DeReticular 700V DC island microgrids.

Architecture Metric Traditional AC Hyperscaler Facility DeReticular 700V DC Native Microgrid
Conversion Stages 4 Conversion Steps (AC-DC-AC-DC) 1 Step (Direct Rectified DC Bus)
Parasitic Conversion Losses 15%–22% Parasitic Heat Waste < 2.0% Native Busbar Loss
Power Usage Effectiveness (PUE) 1.40 – 1.65 (Air Chillers & Fans) 1.05 (Dielectric Liquid Immersion)
Thermal Heat Utilization 0% (Evaporative Cooling Tower Dump) 100% (Hydronic Co-Gen District Export)
Grid Interconnect Dependency 1,000-Mile Line Failure Vulnerability Sustained Island Mode (< 16ms ATS)

Peer Research & Architectural White Papers

Formal systems specifications authored by Michael Noel and the DeReticular Systems Institute.

REF: SN-ARCH-2026-V1 VIRTUAL POWER PLANTS

Sovereign Nodes VPP Architecture

Co-optimizing continuous biomass syngas generation with high-density AI compute loads at 84.8% captive thermodynamic efficiency via native 700V DC busbars and sub-16ms ATS.

Access White Paper →
REF: PRIME-WV-HB2014 PRIME POWER

The DeReticular Blueprint for Infrastructure Sovereignty

Detailed statutory and engineering roadmap for plasma and pyrolytic syngas microgrid districts authorized under West Virginia Code §5B-2-21.

Access Power Blueprint →
REF: CCCE-V3-PROD THERMODYNAMICS

Carbon-Consuming Circular Economies (CCCE v3)

Coupling pyrolytic gasification with liquid immersion edge computing to recirculate 100% of thermodynamic value into behind-the-meter industrial assets.

Examine CCCE Blueprint →

The Federated Sovereign Infrastructure Stack

LAYER 1: POWER

Agra Dot Energy

Biomass Pyrolysis & 700V DC Native Busbars.

Visit Agra.Energy →
LAYER 2: MOBILITY

Kurb Kars

Autonomous Fleet EV & Tactical HIPAA NEMT Pods.

Visit KurbKars.com →
LAYER 2: PROVING

DAOSRUS

Project Octagon & Offline Machine State Channels.

Visit DAOSRUS.com →
LAYER 3: CORE PRIME

DeReticular

TriFi Hardware Suite & Island Microgrid Audits.

Visit DeReticular.com →
LAYER 5: ADVISORY

Biz Builder Mike

Noel’s Law Triage & Municipal Cabinet Briefings.

Visit BizBuilderMike →

Statutory Authority & Microgrid Carve-Outs: Structured under West Virginia Code §5B-2-21 (Certified Microgrid Districts) to construct autonomous, behind-the-meter generation independent of public service commission monopoly boundaries.

Federal Accounting & Job-Costed Isolation: Front-End Engineering Design (FEED) deliverables and interconnect studies are executed in strict compliance with FAR Part 31 and DCAA SF 1408 accounting standards. Advisory retainers are segregated from contingent success fees under FAR 52.203-5.

© 2026 Sovereign Infrastructure Consortium (SIC) • DeReticular Energy Systems • Governed under Noel’s Law of Structural Vulnerability • Master Baseline v6.0.