AIR VILLAGE PLATFORM

AIR COMPUTE CAMPUS

A Circular Pneumatic Energy & Cooling Platform
for AI Data Centers

Power the Compute. Reuse the Heat. Reduce the Water.


Solution Overview | 2026

WHY NOW

The next competitive edge in data centers is determined outside the server

How quickly and reliably you can secure power, cooling, and water

Power Demand

Global data center power consumption
2024 415 TWh
2030 945 TWh

Development Delays

If grid bottlenecks persist, approximately 20% of planned projects face the risk of delays

AI Heat Density

GPU-centric computing is simultaneously transforming power and cooling into critical site selection criteria

The New Question

"How many servers can we install?" → "How quickly can we secure energy infrastructure?"

THE BIG IDEA

We transform data centers into circular energy hubs

"We transform data centers from simple energy-consuming facilities into circular energy hubs that generate power, cool servers, and recycle waste heat."

DIFFERENCE

How is this different from conventional data centers?

From fragmented facilities to a single circular utility platform

Conventional Data Center

Relies on external grid power

Electric chillers and cooling towers

Server heat discharged externally

Power, cooling, and data center procured separately

Standalone data center infrastructure

AIR COMPUTE CAMPUS

Pneumatic on-site generation, storage, and grid in parallel

Post-generation cooling via EX-TCC · EX-TCU

Server and cooling water heat recovery

Container-type modules with phased EX-LINE expansion

Regional platform connected to AIR VILLAGE

PROBLEM → SOLUTION

We address four key problems of conventional data centers simultaneously

Not a single facility, but a platform where problem-specific functions are interconnected

01 Power & Grid

EX-LINE pneumatic supply → EX-2 on-site generation
EX-SMART CELL storage → grid & UPS parallel operation

02 High-Density Cooling

Post-generation pneumatic cooling → EX-TCC campus thermal management
EX-TCU data center & rack-adjacent cooling

03 Water Consumption

Steam-cycle-independent pneumatic generation
Cooling load sharing → targeting reduction of cooling tower water usage

04 Waste Heat Discharge

Server & existing coolant heat recovery
Wasted heat → AIR FACTORY input portfolio

※ Actual savings and performance figures are presented based on site-specific integrated design and pilot measurement data

ARCHITECTURE

Six Core Modules of the Air Compute Campus

A standard core interface forms the foundation for global repeated deployment

AIR FACTORY

Heat source → pneumatic energy
On-site utility hub

EX-LINE

Supply & recovery network
Integrated power & cooling delivery

EX-2

Pneumatic on-site generation
Grid supplementation & resilience

EX-TCC / EX-TCU

Campus & internal cooling
High-density thermal load management

EX-SMART CELL

Dedicated energy storage
Load leveling & availability

HEAT RECOVERY

Server & coolant heat recovery
Circulation efficiency & water strategy

CUSTOMER VALUE

What customers gain is not "equipment" — it is integrated infrastructure competitiveness

Faster Development

On-site generation and modular expansion address delays in grid power connection

More Flexible Scaling

AIR FACTORY modules can be replicated incrementally as demand is confirmed

Integrated Risk Management

Power, cooling, water, and waste heat managed under a single operational framework

Shared Regional Value

Connected to AIR VILLAGE, extending benefits to industrial and public facilities

Power + Cooling + Storage + Heat Recovery

PILOT

We operate first at AIR VILLAGE

Connecting residential, industrial, and small computing loads through a single EX-LINE

01

Integrated Design

Small data center + AIR FACTORY

02

100–250 kWth Pilot

Power generation, cooling & heat recovery metering

03

24-Hour Reference Operation

Grid & UPS parallel, seasonal operation

04

1MW Commercial Scale-Up

Standard EPC & customer reference

MEASURE

What Does the Pilot Demonstrate?

Converting technical descriptions into operational data customers can use

POWER

  • EX-2 net power output
  • Pneumatic consumption
  • Grid & storage operation ratio

COOLING

  • EX-TCC & EX-TCU capacity
  • Server inlet temperature
  • Heat recovery volume

WATER

  • Cooling power vs. baseline
  • Makeup water & blowdown
  • Variation by climate

RELIABILITY

  • Availability & response speed
  • Safe shutdown
  • 24-hour operation

ECONOMICS

  • Module CAPEX & OPEX
  • Power & cooling service unit cost
  • O&M benchmarks
GLOBAL SCALE

Realistic global expansion is a combination of standardization and localization

The core technology remains the same, while the configuration is adjusted to match local heat sources, regulations, and climate.

STANDARD CORE

  • AIR FACTORY
  • EX-LINE
  • EX-2
  • EX-TCC / EX-TCU
  • EX-SMART CELL
  • Metering, safety & digital operations

LOCAL PACKAGE

  • Heat source configuration
  • Grid, pressure vessel & piping regulations
  • Climate & cooling method
  • EPC, procurement & permitting
  • Local partners & service pricing
GO-TO-MARKET

From Small Operational References to Campus Business

Scale up incrementally as customer load is confirmed

01

AIR VILLAGE

Operational data

02

1MW REFERENCE

Customer reference

03

CAMPUS MODULES

Repeatable deployment

04

REGIONAL PLATFORM

AIR VILLAGE network

Priority Target Regions

Projects with grid connection backlog · high-temperature climates · water constraints · island or industrial complex sites · secured local partners

BUILD THE FIRST PILOT

Power the Compute,
Reuse the Heat,
Reduce the Water.

Power the Compute. Reuse the Heat. Reduce the Water.

AIR VILLAGE PLATFORM