Fredericia, DK — 20 MW operating West Texas — 50 MW in development, first block energizing Fort Wayne, IN — in development Compute capacity enquiries open
Home / Compute Power Compute Power · Micro-megawatt fabric · 1–20 MW per site

The megawatts everyone
else is too big
to sell you.

Crossbridge Power builds behind-the-meter generation at industrial sites the hyperscalers skip — 1 to 20 MW per location, energized in months instead of interconnection years, on the same operating standard that scales to a 200 MW campus. On bridge fuels we refine ourselves, with the engineered step down to gas and grid from day one. We sell power, land and shells to the neoclouds; we do not compete with them for tokens.

1–20
MW per fabric site
20
MW operating — Fredericia
50
MW in development — W. Texas
2
Jurisdictions: US · EU
120
Day minor-source clock
01  The thesis

All paths lead to a neocloud. Every one of them ends at power.

Six different businesses are converging on one operating model. Rent out your own GPUs. Start next to power and build the data center. Aggregate other people's capacity. Do research and sell the spare cycles. Build your own silicon and sell inference on it. Route inference across everyone else's chips. Different starting points, one destination — and one binding constraint.

Compute gets cheaper every quarter. Energized industrial land does not. Crossbridge sits upstream of all six paths: we hold the site, the fuel and the generation, and we contract it to whoever is turning electrons into tokens.

Paths 01 · 02

Own the GPUs

Fleet operators renting their own accelerators, and research shops selling their spare cycles, hit the same wall. A fleet is only worth what you can keep busy, and keeping it busy is a power problem long before it is a demand problem.

Paths 03 · 04

Start at the power

Operators who began in generation or mining already know the answer. Their scarcity is not silicon — it is the next site with fuel, a permit and a customer. That site is the product we sell.

Paths 05 · 06

Aggregate and route

Aggregators and cross-silicon routers need many small pools in many places, not one gigawatt campus. A fabric of 1–20 MW sites is the supply shape they cannot buy from a hyperscale developer.

A 100 MW minimum order size is a hyperscaler artifact. The fastest-growing inference workloads are batch, background and agentic — they will take a megawatt at a time, in any jurisdiction, at 95% availability, if the price per MWh is right.

Crossbridge Power positioning — micro-megawatt fabric
01b  The bridge, applied to compute

Four rungs of fuel. Three classes of availability. One counterparty.

Compute load is the hardest version of the problem we already solve: it needs power before the utility date, and it cannot be left on rental diesel afterwards. The bridge model handles the fuel path; the availability classes handle the workload path. Together they let you place batch work on the cheap rung today and interactive serving on firm gas capacity later, without re-tendering.

RungFuelWhat it delivers for computeTypical availability class
01 · DeployRenewable diesel / HVOLoad carried in weeks, at diesel speed, without committing the site to dieselFlex ~95%
02 · DisplaceHVO, blends, LPGEmissions and permit exposure drop without new iron, so run hours open upFlex / Balanced
03 · ConvertCNG / RNG / pipeline gasReciprocating gas prime power at ~1.9 MW granularity; the fabric block properBalanced ~99% / Firm 99.9%+
04 · IntegrateGas, RNG, hydrogen-readyPermanent microgrid, N+1, grid-parallel where it pays, heat recovered where there is a loadFirm / Campus N+1
Why it matters here

We refine the fuel we burn

A pure power developer buys its fuel from someone else. When a spec question or a supply squeeze arrives, that is a procurement cycle. For us it is an internal decision.

No stranding

One PPA across all four rungs

You are never re-tendering and never holding an asset that has run out of purpose. The bridge and the destination are the same contract and the same operator.

For the offtaker

The emissions line is priced in

Clean bridge fuel keeps the air permit and your customer's reporting workable from the first hour, instead of becoming the thing you renegotiate in month four.

02  Availability architecture

We sell availability classes, not five nines we cannot support.

Inference platforms already price latency in tiers — interactive, background, best-effort. Power should be sold the same way. A background agent running for six hours does not need the availability of a checkout page and should not pay for it. Every Crossbridge block is contracted against a guaranteed number we can evidence, with an engineered path to the class above it.

Annual downtime budget by class — hover a bar FLEX~95.0%  /  438 h per yearBALANCED~99.0%  /  87.6 h per yearFIRM99.9%+  /  8.8 h per yearCAMPUS N+199.99%+  /  0.88 h per year

Downtime budget is the arithmetic complement of the availability figure over 8,760 hours, drawn on a log scale. Class is assigned per block and per contract: it is what we guarantee, not the best case we have observed.

ClassGuaranteed availabilityDowntime budgetRedundancyWorkload fitProduct
FLEX~95%438 h/yrN, single-train blocksBatch inference, evals, RL rollouts, fine-tunes, checkpointed trainingFabric
BALANCED~99%87.6 h/yrN, hot spare units on siteBackground and agentic pipelines, subagents, long-horizon tasksFabric
FIRM99.9%+8.8 h/yrN+1 on the generation trainInteractive serving, control plane, storage and network tiersFabric & Campus
CAMPUS N+199.99%+<1 h/yrN+1 minimum, phased blocks, BESS/UPS integrationContracted campus load with liquidated-damage schedulesCampus
Why it works

Your control plane is our redundancy

Platforms built for background work already move jobs off a failed pool and fail over to more reliable compute when cheap capacity disappears. If your scheduler absorbs a site going down, you should not be paying a five-nines power premium to prevent it.

Reciprocating fleet

Many small units, not one big frame

Lean-burn reciprocating gas engines in roughly 1.9 MW increments give granular maintenance, low forced-outage impact per unit, fast start and a heat rate that holds at part load. Adding one unit moves a block from Flex to Firm without redesigning the plant.

Honest numbers

Measured at the point of delivery

Availability and capacity are measured as delivered load at the POD, at design summer ambient, after parasitic load and step-up losses — never nameplate. We would rather sign a lower number we can prove than a headline number we cannot.

03  Two products, one operating standard

A fabric of micro sites, and a campus program to grow into.

Most developers pick one. Micro sites are too small for the people who can finance campuses, and campus discipline is too heavy for the people who move fast. We run both off the same fleet, the same fuel desk and the same operating team.

 Crossbridge FabricCrossbridge Campus
Block size1–20 MW per site100–200 MW net, phased
Capacity basisNet delivered at the POD, design summer ambientNet delivered at the POD after parasitics and step-up losses
GenerationLean-burn reciprocating gas, ~1.9 MW units, redeployableLarge reciprocating fleet, N+1, many smaller units over big frames
Heat rate design≤ 8,500 Btu/kWh HHV≤ 8,500 Btu/kWh HHV at full load, site conditions
Air permittingMinor-source path targeted where the site allowsMajor-source PSD where triggered, plus public notice
Time to first powerMonths from notice to proceed, equipment-ledPhased blocks: first power, then substantial completion
Availability classFlex / Balanced / FirmFirm / Campus N+1
Commercial formPower tariff or dry lease; short and medium tenorCapacity charge ($/kW-month) plus energy charge ($/MWh), fuel passed through
OwnershipCrossbridge owns and operates; residual and relocation rights retainedBuild-own-operate preferred over lump-sum turnkey EPC
Downside caseUnits redeploy to another site or back to field serviceSite tenure, credit support, partial-COD capacity payments
Fabric

Speed is the product

Small blocks stay under the thresholds that turn a project into a multi-year regulatory program, and they sit on land that is already industrial.

  • Sub-threshold air permitting where the site allows it
  • Behind the meter — no interconnection queue
  • Fuel from the wellhead or the local network, contracted separately
  • Equipment redeploys, so the asset is not stranded by one tenant
Fabric specification →
Campus

Financeability is the product

At campus scale the customer is buying an annuity with a credit story: firm capacity, a measured heat rate, redundancy, liquidated damages and a payment schedule.

  • 200 MW class, delivered in phased blocks
  • N+1 minimum on the generation train
  • Capacity plus energy tariff, fuel as a pass-through
  • Long site tenure, defined POD boundary, named credit support
Campus program →
04  Block sizer

Tell us the load. We will tell you the shape of the block.

Indicative engineering arithmetic, not a quotation. Gas burn is shown at the design heat rate and energy at a 90% capacity factor. Rack count uses a commonly cited reference of roughly eight liquid-cooled racks per megawatt.

Contracted load
10.0 MW
1 MW ——— 200 MW

Drag to see how the product, the permitting path and the generation fleet change with size.

Indicative block
ProductCrossbridge Fabric
Generation units6 × 1.9 MW
Permitting pathMinor-source path
Gas at design heat rate2,040 MMBtu/day
Energy at 90% CF78.8 GWh/yr
Compute footprint≈ 80 racks
05  Footprint

Two jurisdictions today. Industrial land that is already energized.

Every site in the fabric sits inside an operating industrial position — a refinery, a gas pad, a former terminal — where fuel, yard, water, road access and workforce already exist.

Europe · EU jurisdiction

Fredericia, Denmark

Operating
On-site capacity20 MW
HostOur own refinery
IntegrationRefinery, heat, fuels
TodayOperating

Generation, heat recovery and fuel production on one footprint. Data hall provisioning is the gating item for compute load — not power.

Americas · Permian Basin

West Texas — Stanton

Energizing
Development50 MW
First block~10 MW
Fleet6 × ~1.9 MW recip
GridBehind the meter

Sited for gas access, data center demand and the fuel logistics corridor. First block energizing on new reciprocating gas gensets.

Americas · PJM

Fort Wayne, Indiana

In development
LandFormer refinery / terminal
MarketPJM — I&M / AEP
ProductEdge / regional block
Permit pathMinor source targeted

Industrial-zoned land with city water and sewer and interstate access. Gas connectivity, parcel work and permitting are in development; no capacity is offered yet.

Full site specifications →
06  Who we build for

We are the layer under the neocloud, not another one competing with it.

Crossbridge does not sell GPUs, tokens or managed workloads, and it does not want your customers. The proposition is upstream: controlled land, fuel reliability, bridge and permanent generation, site development, and a contract structure a lender will accept.

01

Neoclouds & GPU fleets

Capacity in the places and sizes the majors will not build, with an availability class matched to each pool in your fleet.

02

Inference platforms

Background, batch and agentic serving where cost per token dominates and the scheduler already tolerates a site going away.

03

IaaS & colocation

Land, power and shell delivered as one package, phased to the arrival of your hardware rather than a developer's pro forma.

04

Industrial & upstream

The original business: microgrids, bridge power and fuel logistics for operators who cannot wait for a utility interconnection.

07  Engage

Tell us the load, the date, and the availability you can live with.

Send the megawatts, the jurisdiction, the required energization date and the availability class your workload actually needs. We come back with a block, a delivery model and the permitting path that governs it. If we do not have a site that fits, we will say so.