Energy-first AI compute campuses with on-site power generation

Efficiency

Up to 90%

with CHP integration

Revenue Streams

6 Sources

diversified income

90%
CHP Total Efficiency
6
Revenue Streams Per Facility
100%
Hydrogen Ready by 2030
100+ MW
Grid-Scale BESS Storage
Powered On-Site

Self-Powered Infrastructure

Every facility generates its own clean energy. No grid constraints. No transmission costs. 100% energy independence.

Zero-Fuel Heating

Energy Transfer Stations

AI servers embedded directly inside office and residential buildings. Computing workloads generate heat as a natural byproduct—we capture it to warm the building. No fuel. No combustion. No emissions. Just intelligent infrastructure serving two purposes at once.

  • 100% Fuel-Free: Heat from compute, not combustion
  • Zero Emissions: Replaces natural gas heating
  • Dual Revenue: AI workloads + heating cost savings
  • Net Zero Aligned: Supports Canada's 2050 goals
Energy-First Development

AI Campus Hubs

Purpose-built sites for high-performance computing and AI operations. Unlike conventional data centres that depend on the public grid, our AI Campus Hubs are energy-first developments where power, heat, cooling, and digital infrastructure are planned together from day one.

  • On-site cogeneration (24/7 baseload power)
  • Integrated heat recovery & cooling
  • Avoids grid congestion & outages
  • Strategic locations in North America
Behind-the-Meter Power

On-Site Generation

Behind-the-meter generation that skips the interconnection queue. Scale decides the machine: solid oxide fuel cells below about 20 MW, where they hold their efficiency and permit beside housing, and combined cycle gas turbines above it, where the second cycle pays for itself.

  • 51–64% Electrical: SOFC or combined cycle
  • 90%+ Total: With heat recovered and sold
  • No Grid Dependency: Eliminate utility bottlenecks
  • Near-Zero NOx: On the fuel-cell path
Ultra-Low Latency

Urban & Metro Edge AI Data Centres

Edge AI infrastructure positioned inside or near major metropolitan areas. Urban facilities (0–5 km from users) deliver 1–5 ms latency for real-time AI inference. Metro facilities (10–50 km) provide scale for larger workloads. Both integrate seamlessly using zero-emission hydroelectric power.

  • Urban Edge: 0–5 km from city centre, 1–5 ms latency
  • Metro Edge: 10–50 km suburban ring, 10–40 ms latency
  • Waste Heat Recovery: 100% heat export to district energy
  • Hydroelectric Powered: Clean energy from renewable hydro
Daytime Generation

Utility Solar

Bifacial arrays paired with storage, shaving the daytime peak off a campus that already generates its own baseload. Solar does not carry an AI load on its own — but against a 24/7 plant it displaces fuel in the hours it runs, which is exactly where it pays.

  • Bifacial arrays on campus land
  • Paired with grid-scale storage
  • Displaces fuel during daylight hours
  • Site-dependent on land and orientation
Coming Soon
Integrated Storage

Grid-Scale Battery Storage

Our 100+ MW BESS systems are co-located with on-site generation, ensuring seamless power delivery and backup. Paired with our SOFC generation, we deliver 24/7 reliability without grid dependency.

  • 100+ MW storage capacity
  • 4-hour discharge duration
  • Frequency regulation services
  • Revenue from grid services
Self-Powered Charging

Megawatt Charging Systems

Every charging hub generates its own power on-site. No grid upgrades. No utility bottlenecks. Our 4.5MW MCS infrastructure delivers instant capacity for commercial fleets—with V2G capabilities that turn parked vehicles into revenue-generating assets.

  • 4.5MW charging capacity
  • Vehicle-to-Grid (V2G) enabled
  • Commercial fleet focus
  • Integrated with on-site generation
Integrated Energy System

What Is Cogeneration?

Cogeneration (Combined Heat & Power) is one of the most efficient ways to produce energy. Unlike conventional power plants that waste heat, our facilities capture and reuse energy that would otherwise be lost—delivering up to 90% total efficiency.

How Cogeneration Works

1

Produces Electricity

High-efficiency turbines generate reliable baseload power

2

Captures Waste Heat

Heat Recovery Steam Generators (HRSG) capture thermal energy

3

Reuses That Heat

Powers buildings, industry, and clean-fuel production

Our Integrated Energy Campus

Combined-Cycle Power Generation

High-efficiency gas turbines generate reliable electricity. Heat from this process is recovered and reused rather than wasted.

Heat Recovery & District Energy

Captured heat is converted into steam or hot water for municipal buildings, industrial users, greenhouses, and district heating networks.

Clean Hydrogen Production

Using recovered heat and steam, the facility produces low-carbon hydrogen for clean transportation, industry, and future energy systems.

Carbon Capture

Advanced carbon-capture systems reduce emissions by capturing CO₂ before release, lowering environmental impact and carbon costs.

90%Energy Efficiency
40%Lower Energy Costs
100%CO₂ Captured
24/7Reliable Power
6+Revenue Streams
BCFirst of Its Kind

Our integrated cogeneration facilities represent a new generation of energy infrastructure in North America, combining power generation, heat recovery, hydrogen production, and emissions reduction in a single, coordinated campus.

What Powers Each Hub

On-Site Energy Stack

Each Greco Energy AI Campus Hub is powered by a dedicated, on-site energy system designed specifically for the high, continuous power demands of artificial intelligence and high-performance computing.

Core Power System

High-Efficiency Cogeneration (CCGT + CHP)

At the core of each hub is a high-efficiency combined-cycle cogeneration plant that generates large amounts of reliable electricity, captures and reuses waste heat, and operates continuously as 24/7 baseload power.

Constant, Uninterrupted Power

AI servers require continuous power—on-site generation delivers without grid dependency

Avoids Grid Congestion

No waiting for utility upgrades or interconnection approvals

90% Total Efficiency

Cogeneration uses fuel more efficiently, dramatically lowering operating costs

Heat Recovery & Cooling Integration

AI systems produce significant heat. Instead of wasting it, our facilities capture thermal energy and convert it into useful applications.

  • Waste heat from power generation is recovered
  • Absorption chillers provide cooling for data centres
  • Excess heat powers district heating networks

Why This Matters for AI

Greco Energy's cogeneration facilities deliver meaningful benefits for compute-intensive operations.

  • Lower energy costs for operators
  • Reduced carbon emissions and carbon-tax exposure
  • Improved energy security and grid resilience
  • Infrastructure that scales with demand

Greco Energy facilities utilize combined-cycle gas turbines (CCGT), heat recovery steam generators (HRSG), combined heat and power (CHP), hydrogen production systems, and carbon capture technologies to maximize efficiency and reduce emissions.

Our Approach

We Don't Buy Power.
We Generate It.

Unlike traditional data centres and charging networks that rely on increasingly strained grids, Greco builds dedicated power generation at every facility. Our vertically integrated model means each site generates its own clean energy—eliminating grid constraints, reducing costs, and ensuring uninterrupted power.

0%

Grid Dependency

40%

Lower Energy Costs

Scalability

On-Site Generation

Power produced where it's consumed. No grid dependency, no transmission losses.

Lower Energy Costs

Bypass grid fees and volatile wholesale prices with predictable, self-generated power.

99.99% Uptime

Islanded microgrids with battery backup ensure continuous operation during outages.

Instant Scalability

Expand capacity without waiting for grid upgrades or utility interconnection.

The compute, supplied and managed

GRECO specifies, procures, integrates and manages Dell Technologies and Lenovo infrastructure — and generates the power it runs on.

Investment Advantage

The Greco Advantage

Advanced technology integration and multiple revenue streams create superior returns and reduced risk for infrastructure investors.

Six Revenue Streams

Our integrated hub approach generates income from electricity sales, district heating, EV charging, grid services, carbon credits, and capacity payments—reducing dependency on any single market and creating resilient returns.

Electricity Sales

Dispatchable power to the grid

District Heating

CHP waste heat utilization

EV Charging

MCS commercial fleet charging

Grid Services

Frequency regulation & ancillary

Carbon Credits

CCUS and offset revenue

Capacity Payments

Guaranteed availability revenue

Renewable & Sustainable

Multi-technology approach combines hydrogen-ready gas turbines, solar generation, and battery storage for maximum renewable integration and a clear path to net-zero operations.

Revenue Diversification

Six distinct revenue streams from a single facility investment reduce market risk and create stable, predictable returns across different energy market conditions.

CIB Mandate Aligned

Greco Energy projects directly support Canada Infrastructure Bank priorities including Clean Power, Green Infrastructure, and Digital Infrastructure investment mandates.

Technology Capabilities
2024-2030 Roadmap
Hydrogen Blending50% → 100%

Georgia Power achieved 50% blend in Dec 2024. 100% turbines available by 2030.

Carbon Capture Rate90-100%

NET Power technology captures all emissions. Post-combustion achieves 90%+.

Turbine Efficiency64%+

Modern CCGT achieves highest efficiency of any thermal generation technology.

GE Vernova LM6000100% H₂
Siemens SGT5-9000HL600 MW

Transition Infrastructure

Natural gas CCGT facilities provide essential grid reliability during the renewable buildout—while hydrogen and carbon capture technologies ensure these assets remain valuable through net-zero transition.

  • Hydrogen Transition PathwayStart with natural gas, progressively blend hydrogen up to 100% as supply scales.
  • Carbon Capture IntegrationAll CCGT facilities designed for bolt-on CCUS, aligned with federal tax credits.
  • Grid Stability ServicesProvide essential baseload and frequency regulation during renewable buildout.
AI data center demand projected to grow 160% by 2030

Edge AI Campus Neighborhood Benefits

Our liquid-cooled servers generate waste heat that we capture and distribute to nearby homes and buildings—eliminating heating costs and emissions.

Heat Recovery Calculator

See the impact on your neighborhood

Homes Connected150
Small ComplexLarge District
Annual Savings
$278K

~$1850/home

CO₂ Avoided
360

tonnes/year

Gas Replaced
13K

GJ natural gas

Heat Recovered
1.8K

MWh/year

How It Works

Server heat → home heating

1

Liquid-Cooled AI Servers

High-performance GPU clusters generate significant waste heat during AI computing operations.

2

Heat Capture & Transfer

Liquid cooling systems capture heat at 50 °C and transfer it to a district heating loop.

3

Hot Water Distribution

Insulated underground pipes deliver hot water to apartment buildings and homes in the surrounding area.

4

Zero-Fuel Heating

Residents receive free or low-cost heating with zero combustion—no gas, no emissions, just captured waste heat.

Based on typical Edge AI Campus with 5MW compute capacity. Actual savings vary by local heating costs and building efficiency. Heat recovery follows Nordic district heating standards.

Energize your fleet.

Join the network of businesses and municipalities switching to Greco Energy's hybrid infrastructure solutions.