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SOLIS AI

POWER- FIRST INFRASTRUCTURE FOR THE INTELLIGENCE ECONOMY

Artificial intelligence is transforming the global economy and creating unprecedented demand for reliable electricity, accelerated deployment and high-density computing infrastructure. Solis AI develops integrated energy and campus solutions designed specifically for next-generation AI computing. By combining dispatchable solar thermal generation, long-duration thermal energy storage, advanced power cycles and intelligent campus controls, Solis AI is designed to deliver dependable energy infrastructure at the scale and speed required by the AI economy.

24/7 DISPATCHABLE POWER. MODULAR AI CAMPUSES. INFRASTRUCTURE-SCALE DEPLOYMENT.

25 MW · 50 MW · 100 MW · 200 MW CONFIGURATIONS

AI GROWTH IS BECOMING A POWER INFRASTRUCTURE CHALLENGE

The next generation of AI infrastructure cannot depend exclusively on traditional utility interconnection timelines, intermittent renewable generation or short-duration battery systems.

01

Large, predictable blocks of power

05

Grid-independent and behind-the-meter
options

02

High availability and
resilience

06

​Infrastructure capable of supporting increasingly dense compute

03

Rapid capacity
expansion

07

Flexible load management without compromising critical workloads

04

Long-term energy-price visibility

PLATFORM LAYERS

THE SOLIS AI INFRASTRUCTURE PLATFORM

Solis AI combines four coordinated infrastructure layers.

01 — DISPATCHABLE ENERGY

The Solis ASC concentrated solar platform captures high-temperature thermal energy for electricity generation, storage and applications.

Unlike intermittent generation, the Solis platform is designed to provide scheduled and dispatchable energy after sunset and during periods of peak demand.

Modular ASC solar-thermal generation

Long-duration thermal energy storage

Steam, combined-cycle and supercritical CO2-compatible power systems

Behind-the-meter power delivery

Grid-connected or island-capable configurations

Supplemental generation and emergency-power integration

Phased capacity expansion

Image (Solis ASC modular concentrated solar thermal collectors and fixed receiver system_e

02 — AI CAMPUS INFRASTRUCTURE

Coordinated energy and digital-infrastructure development.

Designed as a holistic ecosystem rather than standalone facility contracts, merging power dispatch directly with compute loads.

Dedicated generation and thermal storage

Data-center buildings or modular compute systems

High-density rack infrastructure

Liquid-cooling and warm-water thermal loops

Grid-import and export capability

Black-start and island-mode operation

Water-efficient heat-rejection systems

Cybersecure microgrid controls

Phased tenant expansion

Dedicated substations and electrical distribution

Waste-heat recovery and productive thermal reuse

03 — FLEXIBLE COMPUTE OPERATIONS

Intelligent triage across priority queues and workload tiers.

We differentiate mission-critical inference, real-time commercial workloads, model training, batch processing, scientific computing, and deferrable workloads to protect uptime and optimize dispatch.

Workload shifting

Controlled load ramping

Demand-response participation

Energy-aware compute scheduling

Thermal-state-aware operations

Prioritized backup-power allocation

Grid-support service participation

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04 — THERMODYNAMICALLY OPTIMIZED AI INFRASTRUCTURE

Thermodynamic optimization based on entropy-generation minimization and exergy optimization.

Improving useful computing output while aggressively reducing avoidable electrical and conversion losses across cooling, transport, and dispatch layers.

Dedicated generation and thermal storage

Compute availability per unit of infrastructure

Reduced cooling and conversion losses

Improved equipment utilization

Recovered and reused thermal energy

Lower infrastructure cost per unit of useful AI output

STANDARDIZED SCALE

STANDARDIZED SOLIS AI CAMPUS CONFIGURATIONS

Solis AI campuses are planned around four standardized capacity classes.

25

MW

Edge / specialized AI campus

Designed for:

Regional inference capacity.

Government and research computing.

Enterprise AI.

Modular cloud infrastructure.

Initial AI-campus demonstrations.

High-value industrial computing.

Typical characteristics:

Rapid phased deployment.

Modular compute blocks.

Behind-the-meter energy.

Option al grid interconnection.

Expansion pathway to 50 MW or greater.

50

MW

Dedicated AI Infrastructure Campus

Designed for:

AI-cloud providers.

Enterprise training and inference.

Sovereign or institutional compute.

Research and advanced simulation.

Regional hyperscale expansion.

Typical characteristics:

Dedicated generation and storage.

Multi-building data-center design.

Redundant electrical architecture.

Flexible workload controls.

Expansion pathway to 100 MW.

100

MW

Hyperscale AI Campus

Designed for:

Large-scale model training.

Hyperscaler capacity expansion.

National AI infrastructure.

Dedicated AI factories. High-density accelerator deployments.

Typical characteristics:

Utility-scale ASC and TES infrastructure.

Multiple compute halls. Dedicated substation and microgrid.

High-capacity liquid cooling.

Grid-support and demand-management capabilities.

Phased delivery of power and compute capacity.

200

MW

Integrated AI Energy Campus

Designed for:

Hyperscale AI clusters.

Multi-tenant AI-cloud infrastructure.

National or sovereign computing platforms.

Large-scale research and scientific computing.

Integrated generation, storage and digital infrastructure.

Typical characteristics:

Multiple power-generation blocks.

Long-duration storage.

Redundant power-conversion systems.

Dedicated transmission and grid interface.

Advanced campus-wide microgrid controls.

Multiple tenant or compute zones.

Expandable development footprint.

Potential integration of steam, combined-cycle and supercritical CO2 power technologies.

PLATFORM UNIFICATION

BRING YOUR OWN POWER

Energy and Compute Developed as One Platform

The conventional data-center development model often separates the facility from the infrastructure required to power it. Solis AI uses a Bring-Your-Own-Power approach.

The result is a defined block of AI capacity with a corresponding plan for generation, storage, resilience and expansion.

01 — DISPATCHABLE ENERGY

Site control

Energy-resource assessment

ASC and TES system design

Campus master planning

Grid and interconnection strategy

Data-center infrastructure

Cooling and water systems

Tenant capacity reservations

Project financing

Phased construction and commissioning

SERVICE SCOPE

MORE THAN ELECTRICITY

A Solis AI Campus can provide a coordinated package of infrastructure services.

Energy Services

Reserved power capacity

Metered energy delivery

Long-duration thermal storage

Peak-energy management

Backup and emergency supply

Grid import and export

Renewable-energy attributes

Resilience Services

​Island-capable microgrid operation

Black-start capability

Energy reserves

Redundant power-conversion pathways

Supplemental emergency generation

Prioritized restoration of critical loads

Campus Services

Site development

Electrical infrastructure

Water and cooling design

Tenant-specific engineering

Modular expansion

Infrastructure operations and monitoring

SYSTEM UPTIME

DESIGNED FOR HIGH AVAILABILITY

AI infrastructure requires more than an annual energy calculation.

Solis AI designs reliability across multiple layers:

Solar thermal generation.

Thermal energy storage.

Power-conversion equipment.

Grid connections.

Supplemental generation.

Electrical distribution.

Campus microgrid controls.

Tenant-level backup systems.

Availability commitments would be established for each project based on its complete architecture, point of delivery and customer requirements.

Enhanced-reliability configurations may include:

N+1 or greater equipment redundancy.

Multiple power blocks.

Dual utility feeds.

Dedicated stored-energy reserves.

Emergency generation.

Island-mode operations.

Black-start capability.

Segregated critical and flexible compute loads.

ALBUQUERQUE, NEW MEXICO 200 MW AI ENERGY CAMPUS

POWER PLATFORM

200 MW

AI LOAD

Up to 175 MW

ARCHITECTURE

ASC + TES + power conversion

INFRASTRUCTURE

Dedicated generation + AI campus + grid interconnection

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AI INFRASTRUCTURE BEYOND THE SOUTHWEST

Hybrid power architectures for regions where solar, waste-derived energy, storage and the grid can operate as complementary resources.

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SOLIS AI ENERGY CAMPUS

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BUILD THE POWER INFRASTRUCTURE FOR YOUR NEXT AI CAMPUS

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