Coolant Distribution Unit (CDU) for AI & HPC Cooling

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Reliable Coolant Management for High-Density Computing

Reliable Coolant Management for High-Density Computing

A coolant distribution unit CDU provides a controlled interface between facility cooling infrastructure and liquid-cooled IT equipment. It circulates coolant, manages supply and return temperatures, and helps regulate flow and pressure for servers, racks, CPUs, GPUs, and accelerators. Depending on project requirements, a CDU can integrate pumps, heat exchangers, manifolds, valves, filters, sensors, controls, and monitoring functions. The configuration can be adapted to thermal load, coolant type, flow rate, pressure, temperature range, rack density, and available installation space. For AI and HPC environments, the CDU can support direct-to-chip cooling by distributing coolant to processor cold plates and collecting warmed fluid for heat rejection. This architecture provides a practical foundation for scalable liquid cooling deployments across data centers, cloud infrastructure, telecom facilities, and high-performance computing environments.
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Case Study

High-Density GPU Rack Cooling

An AI computing facility needed a dedicated cooling interface for GPU servers operating at high rack density. A coolant distribution unit CDU was configured to circulate technology-side coolant between the cooling source and multiple rack-level cooling loops. Supply and return manifolds connected the CDU with server cold plates, while sensors monitored key operating conditions. System planning considered the combined thermal load of the GPU racks, required coolant flow, supply and return temperatures, pressure drop, and coolant compatibility. Quick disconnect couplings could be included for equipment servicing. The CDU architecture provided centralized coolant management while allowing individual rack circuits to be organized around their specific cooling requirements and future expansion plans.

HPC Cluster Liquid Cooling

A high-performance computing cluster was upgrading from conventional air cooling to liquid cooling for CPU and GPU-intensive workloads. The CDU served as the interface between facility-side cooling equipment and dedicated technology cooling loops. Coolant was circulated through rack manifolds toward processor cold plates before returning to the CDU for heat transfer. Engineers evaluated total cluster heat load, flow capacity, pressure requirements, supply temperature, return temperature, fluid chemistry, and maintenance access. Pumps, heat exchangers, valves, filtration, and monitoring components could be integrated based on the selected architecture. This approach allowed the HPC facility to manage liquid cooling through a centralized distribution point while preparing the infrastructure for additional high-density computing racks.

Data Center Cooling Expansion

A data center planned to introduce liquid-cooled servers gradually instead of replacing its existing cooling infrastructure. A coolant distribution unit CDU was used to establish a dedicated liquid cooling interface for selected high-density racks. The unit circulated coolant through rack-level distribution components and returned heated fluid toward the facility heat rejection system. The design could incorporate pumps, valves, manifolds, sensors, filtration, and heat exchange components according to operating requirements. Engineers considered rack thermal load, flow rate, pressure, temperature conditions, and future capacity before deployment. This modular approach allowed the facility to begin with selected AI or HPC racks and expand the liquid cooling network as additional high-power equipment was installed.

Related products

A coolant distribution unit CDU is a core component in liquid cooling infrastructure for high-density computing. It manages coolant circulation between the facility cooling system and technology-side cooling loops, helping deliver controlled fluid conditions to server racks and processor-level cooling equipment. Depending on the application, the CDU can include pumps, heat exchangers, manifolds, valves, filters, sensors, control systems, and monitoring interfaces. It can support direct-to-chip cooling for CPUs, GPUs, and accelerators by supplying coolant to cold plates and collecting warmed fluid from the equipment. Key configuration parameters include thermal load, flow rate, supply and return temperatures, operating pressure, pressure drop, coolant properties, heat exchanger capacity, and rack density. CDUs are suitable for AI data centers, HPC clusters, cloud facilities, telecom infrastructure, and other environments where conventional air cooling may not meet the thermal requirements of high-power computing equipment.

Frequently Asked Questions

What is a coolant distribution unit CDU?

A coolant distribution unit CDU manages liquid coolant between facility cooling infrastructure and technology-side cooling loops. It typically circulates and conditions coolant while controlling flow, temperature, and pressure. The CDU can connect to rack manifolds, cold plates, hoses, and other components used in liquid-cooled server environments.
A CDU provides a controlled interface between facility cooling and IT equipment. It can circulate coolant, transfer heat through a heat exchanger, distribute fluid to multiple cooling branches, and monitor operating conditions. This makes it suitable for high-density racks containing CPUs, GPUs, and other liquid-cooled components.
Yes. A CDU can supply coolant to direct-to-chip cooling loops serving CPU and GPU cold plates. The unit manages the technology-side supply and return circuit while connecting it to the facility cooling infrastructure. Configuration depends on thermal load, flow requirements, coolant properties, temperature conditions, and pressure limits.
A CDU can incorporate pumps, heat exchangers, manifolds, valves, filters, sensors, control systems, and monitoring equipment. The exact component arrangement depends on whether the system is rack-level or facility-connected and on requirements such as cooling capacity, flow rate, pressure, coolant type, and installation layout.
Selection should consider total thermal load, required flow rate, supply and return temperatures, operating pressure, pressure drop, coolant compatibility, heat exchanger capacity, number of cooling branches, rack density, and future expansion. Installation space, monitoring requirements, maintenance access, and integration with existing facility infrastructure should also be evaluated.

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Customer Testimonials

David Morgan

The CDU provided a practical connection between our facility cooling loop and GPU rack circuits. Temperature and flow monitoring helped our engineering team manage the liquid cooling deployment more effectively.

Robert Turner

We integrated a CDU into an HPC cooling upgrade and connected multiple server loops through rack manifolds. The centralized arrangement simplified coolant management during the expansion.

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Centralized Coolant Management

Centralized Coolant Management

A coolant distribution unit CDU provides centralized management of liquid coolant for high-density computing equipment. The unit can receive cooling fluid from facility infrastructure and circulate it through a dedicated technology-side loop serving server racks or processor-level cooling systems. Depending on the design, pumps regulate circulation while manifolds divide flow among multiple branches. Sensors can monitor supply temperature, return temperature, flow rate, and pressure to provide operational visibility. Filters and valves may also be integrated to support coolant management and maintenance procedures. This centralized architecture is useful for AI, HPC, and cloud environments where multiple high-power servers require coordinated liquid cooling. CDU configuration can be adapted to current rack requirements and planned system expansion.
Direct-to-Chip Cooling Integration

Direct-to-Chip Cooling Integration

CDUs can support direct-to-chip liquid cooling architectures for modern CPUs, GPUs, and accelerators. The technology-side loop distributes coolant from the CDU through manifolds, hoses, and quick disconnect couplings to processor cold plates. After absorbing heat from the devices, the warmed coolant returns through the collection path toward the CDU. The unit can then transfer thermal energy to the facility-side cooling circuit or another heat rejection system. System design can be based on processor thermal load, coolant flow, pressure drop, supply and return temperatures, fluid compatibility, and the number of connected cooling branches. This configuration is particularly applicable to AI servers, GPU clusters, HPC systems, and other high-density computing platforms.
Scalable Data Center Infrastructure

Scalable Data Center Infrastructure

A CDU can provide a scalable foundation for introducing liquid cooling into new or existing data centers. The distribution architecture can connect one or multiple rack-level cooling circuits while maintaining organized supply and return paths. Depending on requirements, additional manifolds, pumps, valves, sensors, filtration, and monitoring components can be incorporated into the system. Engineers can evaluate total rack heat load, required coolant flow, operating pressure, temperature conditions, and future capacity when planning the installation. This allows cooling infrastructure to be developed around current AI or HPC workloads while leaving room for additional liquid-cooled equipment. A modular CDU approach can also simplify integration with existing facility cooling systems and support phased expansion as rack power density increases.

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