logo
player background
live avator

5s
Total
0
Today
0
Total
0
Today
0
  • What would you like to know?
    Company Advantages Sample Service Certificates Logistics Service
Online Chat WhatsApp Inquiry
Auto
resolution switching...
Submission successful!
баннер
Новости Подробности
Created with Pixso. Дом Created with Pixso. Новости Created with Pixso.

Where Nickel Alloys Are Used in Data Center Liquid Cooling

Where Nickel Alloys Are Used in Data Center Liquid Cooling

2026-10-09

Rack densities have outgrown air cooling. A liquid loop moves far more heat through the same cross-section than an air stream can, which is why data center liquid cooling now reaches cold plates, coolant distribution units and immersion tanks in mainstream data center design. The change brings a materials question with it: every wetted part in a closed loop has to stay sound for the life of the facility, and every joint has to stay tight.

What the Cooling Loop Contains

A liquid cooling system is a set of components that each put different demands on the metal they are made from. The parts that are usually specified are the ones where the material choice is driven by corrosion behavior and by the cost of a leak.

Component What it does Where the material is usually specified
Cold plate Sits on the processor and takes heat into the loop Copper, because the heat has to cross the wall into the fluid
Coolant distribution unit Pumps, filters and exchanges heat between the rack loop and the facility loop Stainless manifolds, with CuNi coil tube in the heat exchanger
Manifolds and quick disconnects Distribute coolant to the racks and allow a rack to be serviced without draining the loop Stainless, for strength at the joint and resistance to the coolant
Immersion tank Holds servers in a single-phase or two-phase fluid Stainless for the tank, with nickel-bearing materials on wet surfaces that see the fluid directly
Secondary loop tubing Carries fluid between the distribution unit and the facility CuNi coil tube and stainless, where the loop chemistry or a mixed-metal joint calls for them

What Drives the Material Choice

Four drivers decide the wetted material at any position in the loop, and they pull in different directions.

Driver What it rules in What it rules out
Coolant chemistry Alloys that keep a passive surface in the fluid the loop runs on Carbon steel, and any pairing that puts an active metal against a passive one
Mixed-metal joints Materials that stay sound when copper, stainless and brass share the same fluid Combinations that leave one metal as the sacrificial half of the pair
Leak tolerance Wetted parts chosen for how they behave in crevices and under deposits Thin-wall choices where a weep inside a rack becomes an outage
Heat transfer Copper for the thermal path, where the coolant side is not the problem A nickel-bearing surface sized on conductivity alone

Coolant is not plain water, and the fluid a loop runs on behaves differently towards each metal it touches. A closed loop is by definition a mixed-metal system, where copper parts and stainless manifolds can end up sharing a fluid with brass fittings and an aluminium heat sink. Where two metals sit in the same circuit, the less noble one corrodes, and the choice at that joint decides whether the loop survives ten years of service.

Heat transfer sets the limit on the other side. Copper alloys conduct heat faster than nickel, so where a nickel-bearing surface is specified for corrosion reasons, the wall thickness and the flow path are sized to move the heat anyway. Pure nickel itself conducts 70.2 W/m·K, well below copper, so it is chosen where the fluid side of the duty is the problem and the thermal side is not.

Where Each Position Is Decided

Each position is settled by whichever driver dominates there, and the decision is then confirmed against the loop chemistry and the drawing on the order.

Position What decides it What the order has to confirm
Cold plate Heat flux across the wall The plate material and the flatness or surface requirement
Coolant distribution unit The small-bore tube and the brazed joints Tube grade, wall thickness and the coolant the tube will see
Manifolds and quick disconnects Strength at the joint, and resistance to the coolant Material, wall thickness and the connection form
Immersion tank Long wet contact over a large area Tank material and the wetted parts inside it
Secondary loop tubing Loop chemistry and any mixed-metal joint Tube grade, and the length or volume in the delivery

The Two Circuits, and What Each One Asks of the Material

A liquid cooling installation is normally two circuits, and the material question splits with them. The rack loop runs from the cold plate to the distribution unit and is closed and controlled. The facility loop carries the heat away from the distribution unit and out of the building, and its water quality is set by the site. The same alloy can be correct on one side and wrong on the other.

Item Rack loop Facility loop
What it carries Coolant between the cold plate and the distribution unit Heat from the distribution unit to the plant water or to atmosphere
Materials usually specified Copper cold plates, stainless manifolds and quick disconnects Stainless and CuNi exchanger tube, with wetted parts chosen for the plant water
Chemical control Treated fluid held to a specification Water quality and filtration set by the site
What the order fixes Grade, wall thickness and the connection form Exchanger tube grade, and the coolant it sees on each side
If a joint fails A rack is taken out of service The loop is derated while the leak is traced

Forms and Standards for Cooling Hardware

Cooling hardware is ordered in the forms the drawing calls for, and the standard follows the form.

Form Why it is ordered for cooling work Standard the lot is released to
Coil tube The exchanger surface, where wall thickness sets the heat path ASTM B161 and B163 with GB/T 2882-2023
Tube Distribution runs, where the bore and the joint decide ASTM B161 and B163 with GB/T 2882-2023
Strip Brazed assemblies, where the strip thickness sets the gap ASTM B162 with GB/T 2072-2020
Plate Fabricated parts sized from the drawing ASTM B162 with GB/T 2054-2023
Bar Machined fittings and connections ASTM B160 with GB/T 4435-2010

Who Specifies What

Cooling hardware is specified twice: once by the equipment builder who owns the thermal design, and once by the material supplier who owns the analysis and the release. Where the two disagree, the disagreement shows up as a certificate that does not match the drawing.

Item Specified by the equipment builder Confirmed by the material supplier
Alloy family or grade The service condition at the part: the coolant and the running temperature The grade and analysis window that meet it, and the standard behind the release
Size and wall thickness The heat path, and the pressure the part has to hold The tolerance the form can hold, and how it is measured
Surface and cleanliness Whether the part is brazed, welded or sealed The surface condition supplied, and how residue is controlled
Quantity and staging The build schedule, and how many racks go in per phase The lot sizes, and the batch records that keep each phase traceable

What Belongs in a Cooling Hardware Enquiry

The drawing carries the geometry. Five things about the duty do not sit on the drawing, and they are the ones that change the material:

  • The coolant, named specifically: deionised water, a glycol mix or a treated fluid
  • The metals the coolant will also touch, including fittings and heat sinks
  • The operating temperature band, and whether it cycles
  • The joining process the part will go through, brazing or welding
  • The build staging, if the racks are installed in phases

Questions Buyers Ask

Which nickel-bearing materials are supplied for cooling hardware?

CuNi coil tube, stainless and copper for the wetted parts, with pure nickel, Inconel, Hastelloy and Monel available where the fluid or the temperature rules out the simpler choice. The selection is confirmed against the loop chemistry and the drawing on each order.

What should a cooling hardware enquiry contain?

The form, the grade or UNS number, the size and wall thickness, the tolerance, the condition, the quantity and the document package. Where the coolant is not water, naming it at the enquiry stage saves a second round of quotations.

Which standards apply to the forms supplied?

Tube follows ASTM B161 and B163 with GB/T 2882-2023, strip and plate follow ASTM B162 with GB/T 2072-2020 and GB/T 2054-2023, and bar and wire follow ASTM B160 and ASTM B164. Copper-nickel is supplied to the composition agreed on the order and confirmed on the mill test certificate.

How is the material documented?

Every lot is released with an EN 10204 3.1 mill test certificate issued for the heat it came from, which is what keeps a staged delivery traceable when a project is installed over several months.

How is the material confirmed when the coolant is not water?

The coolant and the other metals in the circuit are written into the order, and the material is then confirmed against them. A glycol mix, a treated fluid and deionised water do not behave the same way towards the same alloy, so the fluid is part of the specification and not a site detail.

What is the minimum quantity for coil tube or a cut part?

Tube and coil tube start at 10 kg, and 3 kg for N4. Cut parts and manifolds are quoted from the drawing, because the quantity that suits the run is set by the nesting, not by a package size.

Summary

Liquid cooling puts corrosion, leakage and heat transfer in the same component, and the material at each position is chosen for whichever of the three dominates there. Cold plates are copper for the thermal duty. Manifolds are stainless for the joint. Heat exchanger tube and the wet surfaces behind it take nickel-bearing materials where the coolant chemistry, the temperature or a mixed-metal joint makes the cheaper option short-lived.

DLX has supplied nickel and copper-nickel products to thermal management builders since 2002, from a plant rated at 10,000 t/yr and certified to ISO 9001 with SGS audits. Coil tube, manifolds and cut parts are quoted from the drawing. Send the drawing and quantity for a confirmed quotation.

References

  1. ASTM B161 and B163 with GB/T 2882-2023, nickel tube. The standards behind the exchanger and distribution rows.
  2. ASTM B162 with GB/T 2072-2020, nickel strip, and GB/T 2054-2023 for sheet and plate.
  3. ASTM B160 with GB/T 4435-2010, nickel rod and bar, and ASTM B164 with GB/T 21653-2008 for wire.
  4. EN 10204, inspection documents, for the 3.1 certificate issued with each lot.
  5. Nickel Institute publications on nickel and copper-nickel in aqueous service, and the ASM Specialty Handbook: Nickel, Cobalt, and Their Alloys, for the property data quoted above.

Property values are nominal and are not acceptance limits. Acceptance follows the ordered specification and the tests agreed on the order, with copper-nickel supplied to the composition fixed on the order and reported on the certificate for the heat.