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Engineering pack for L1240C45 (L1240C45SUR150). This page is the plant document — not the sales page.

1240 Liquid Cooling Container with UPS (L1240C45)

L1240C45SUR150

45ft 1240 kW Liquid Cooling container · UPS · up to 150 kW/rack

Overview

What this SKU is: envelope, installed units, density, and the geometry you can download. Figures here are properties of the product, not of any one site.

ItemValueBasis
IT design load1,240 kWclaim C7
Installed units8table MDCX module geometry
Maximum density150 kW/rackclaim C8
Air-cooled rack load40 kWtable MDCX liquid plant profile
GPU capacityTBDTBD
Envelope14,000 × 2,438 × 3,490 mmtable ISO container envelope, MDCX module geometry
Footprint34.1 derived 14.000 m × 2.438 m
Lead time90 days ex-worksclaim C3

3D views

Orthographic and section views are generated from the published module geometry for this SKU. The interactive view is read-only — this is the standard configuration, not a configurator.

MDCX L1240C45 liquid cooling container cutaway
MDCX L1240C45 liquid cooling container cutaway

Geometry and schedules

System boundary

The MDCX-supplied envelope is the container. Primary (utility) and secondary (facility) electrical sides meet at the transformer. Site responsibility begins at the published electrical and water interfaces.

Interface definition only. Implementation details are not published.

Power distribution

How power is broken down and distributed inside the boundary, and what the site must present at the connection point.

IT load against plant overhead

At: USA - Pennsylvania (PJM), 34 °C, Summer peak, 100% utilization, GB300 NVL72. The racks draw below the density ceiling at this GPU — 112 kW of rack headroom remains.

Power distribution IT design load: 1128 kW81.8%Plant overhead: 250 kW18.2%

Plant consumers

Plant consumers Primary water pumps25.7 kWCDU pumps20.0 kWCeiling CRAH fans4.0 kWDry cooler fans36.5 kWChiller compressor135 kWUPS conversion loss11.3 kWDistribution loss11.3 kWFacility auxiliaries7.0 kW
ConsumerPowerShare of facility
IT — liquid-cooled racks1088 kW78.9%
IT — air-cooled rack40.0 kW2.9%
Primary water pumps25.7 kW1.9%
CDU pumps20.0 kW1.5%
Ceiling CRAH fans4.0 kW0.3%
Dry cooler fans36.5 kW2.6%
Chiller compressor135 kW9.8%
UPS conversion loss11.3 kW0.8%
Distribution loss11.3 kW0.8%
Facility auxiliaries7.0 kW0.5%
Facility total1378 kW100%

Plant overhead is 250.3 kW, 22.2% of IT, for a PUE of 1.222 at this point.

Single-line topology

Single-line topology (interface definition). Protection settings are not published.

Single-line topology GridTransformerMain switchUPSIT load onlyPDCBuswayRack×8

Ratings at the boundary

Ratings in this section are derived from the IT design load and the published PUE band. They size an interface; they are not measured results and are not claims-registry facts. Each derived row prints its formula.

C9 liquid PUE ≈ 1.15–1.20 is typical mid-climate only — not free-cooling or summer-peak. Confirm the site point in TCO / Liquid Cooling Designer. It is not an unconditional product band.

ItemValueBasis
IT design load1,240 kWclaim C7
Facility load1,349.8–1,521.3 kWderived 1,240 kW × PUE 1.089–1.227
Connection capacity1,484.8–1,673.4 kWderived facility load × 1.10
Transformer capacity1,484.8–1,673.4 kWderived sized to connection capacity
UPS capacity (IT only)1,250 kWtable MDCX UPS selection
Battery backup120 minclaim C25

Load schedule

A per-circuit load schedule is not published for this SKU. The topology above is the interface definition.

Interface definition only. Implementation details are not published.

Cooling distribution

How heat leaves the racks and reaches ambient: the loops, their design temperatures and flows, and where the plant switches from free cooling to mechanical cooling.

Heat distribution

At: USA - Pennsylvania (PJM), 34 °C, Summer peak, 100% utilization, GB300 NVL72. The racks draw below the density ceiling at this GPU — 112 kW of rack headroom remains.

Heat distribution Cold plate — direct liquid: 944 kW83.7%Rear-door HX — water: 166 kW14.7%Ceiling CRAH — chilled water: 18.0 kW
Heat pathHeatShare of IT
Cold plate — direct liquid944 kW83.7%
Rear-door HX — water166 kW14.7%
Ceiling CRAH — chilled water18.0 kW1.6%
IT heat total1128 kW100%

98.4% of the heat leaves on water at the cold plate and rear door; 1.6% is picked up as air by the ceiling CRAH. Raising the liquid share moves load off the chilled circuit, which is the branch that needs mechanical cooling.

Heat split against the air / liquid ratio

The ratio is set by the server platform, not by the container. Each point moved off the air path is load taken off the chilled circuit — the only branch that needs mechanical cooling.

Heat split against the air / liquid ratio Server air-cooling ratio → 10%Cold plate — direct liquid: 979 kW86.8%Rear-door HX — water: 131 kW11.6%Ceiling CRAH — chilled water: 18.0 kW15%Cold plate — direct liquid: 925 kW82.0%Rear-door HX — water: 185 kW16.4%Ceiling CRAH — chilled water: 18.0 kW20%Cold plate — direct liquid: 870 kW77.2%Rear-door HX — water: 200 kW17.8%Ceiling CRAH — chilled water: 57.1 kW25%Cold plate — direct liquid: 816 kW72.3%Rear-door HX — water: 200 kW17.8%Ceiling CRAH — chilled water: 112 kW9.9%30%Cold plate — direct liquid: 762 kW67.5%Rear-door HX — water: 200 kW17.8%Ceiling CRAH — chilled water: 166 kW14.7%

Loop schematic

Cooling distribution 26/36 °C78.3 m³/hCold-plate rackR150 max×8Rear-door HXair captureCDU1200 kW ratedDry coolercompressor above switch

Loops

LoopSupplyReturnΔTDesign flowFluid
Technology cooling (TCS) — cold plate + rear door26 °C36 °C10 K78.3 m³/hPG25

Heat rejection

Dry cooler, with a screw compressor above the switch temperature

ItemValueBasis
CDU rated cooling1,200 kWtable MDCX CDU selection
CDU units installed1table MDCX CDU selection
Ceiling CRAH installed2table MDCX air-handling unit selection (in-row CW / ceiling CRAH per SKU)
Ceiling CRAH models2× 60.7 kWtable MDCX air-handling unit selection (in-row CW / ceiling CRAH per SKU)
Ceiling CRAH rated cooling121.4 kWtable MDCX air-handling unit selection (in-row CW / ceiling CRAH per SKU)
Ceiling CRAH fan power7.8 kWtable MDCX air-handling unit selection (in-row CW / ceiling CRAH per SKU)
CDU secondary flow103.8 m³/htable MDCX CDU selection
CDU approach4 Ktable MDCX CDU selection
Pressure drop195 kPatable MDCX CDU selection
Pipe diameterDN25table MDCX rear-door heat exchanger requirement
Switch temperature31 °C ambientderived loop return 36 °C − dry cooler approach 5 K

Interface definition only. Implementation details are not published.

Performance

PUE, WUE, and annual energy depend on site and workload, so they are not properties of the SKU. Solve this SKU at your own site:

Basis and disclaimer

Computed numbers in this document are operating-point results for the stated city, season, workload, and utilization. They are not guarantees or SLAs. Marketed numbers live in the claims registry.

Cited claims: C3 · C4 · C31 · C36 · C37 · C38 · C39 · C7 · C8 · C9.

C9 liquid PUE ≈ 1.15–1.20 is typical mid-climate only — not free-cooling or summer-peak. Confirm the site point in TCO / Liquid Cooling Designer. It is not an unconditional product band.

Expansion block and first delivery are 90 days ex-works from receipt of down payment (C3, C4); on-site installation and commissioning 3–4 weeks (C36). Freight and customs are buyer-arranged; MDCX publishes no estimate (C39). Retired schedule and fleet-PUE claims are not restated.

Reserved items

This document publishes what a correct result looks like. It does not publish how MDCX produces it, or with what.

WithheldStatement
BOM, makes, models, suppliersBill of materials, makes, models, and suppliers are not published.
Control logic, alarm thresholds, tuningControl logic, alarm thresholds, and tuning policy are not published.
Solver kernelThe solver kernel is not published. Operating conditions and result numbers are.
Manufacturing and quality path, taktManufacturing path, quality process, and line takt are not published.
Price and commercial termsPrice and commercial terms are not published.