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Rethinking heat: A byproduct of useful work and a resource worth capturing

4 min. Lesen

Heat is a sign that something good is happening. The question is whether we can take that signal and make it even more valuable.

Data center heat is due for a different conversation. For decades, the industry has treated it as a problem to manage, dissipate, and dispose of as efficiently as possible. But heat is not a failure of the system. It is the inevitable byproduct of useful work: every computation run, AI model trained, and inference delivered generates heat as part of doing something productive.

That shift matters because the opportunity is no longer just to remove heat more efficiently or generate less of it through better design, though both remain essential. It is also to recover useful thermal energy and turn it into a practical resource.

The case for recovering data center heat

Every system gives off heat. Cars send it out through their exhaust. Factories produce it as a byproduct of industrial processes. Homes radiate it through poorly insulated walls. But none of those sources are in a strong position to do much with it, because the heat scatters throughout the environment, across millions of vehicles, buildings, and machines. And nobody can practically gather or redirect it.

A large data center is fundamentally different. All the electrical power consumed by IT equipment converts directly into heat. One megawatt of IT load produces one megawatt or more of heat, and all that heat concentrates in a single, contained location. Concentration is what makes recovery viable. Because the heat sits in one place, it can be deliberately captured and then reused or distributed where it can serve a purpose.

The nature of the heat

We need to be precise about the heat data centers produce. Even in AI factory environments, waste heat is generally low-grade. Coolant temperatures achievable through Direct-to-Chip (DTC) liquid cooling, typically in the range of 40–60°C, are higher than those from legacy air-cooled systems, but they remain too low for most industrial thermal processes and well short of what conventional steam generation requires.

This means the practical end uses for data center waste heat are specific: district heating networks, swimming pools, and controlled-environment agriculture such as grow farms are the applications where this heat can realistically be deployed. Other applications like greenhouses, aquaculture farms, hospitals, and university campuses, can also make productive use of this heat where infrastructure exists to connect supply and demand. (See Figure 1)

A real-world example is Meta’s Odense data center in Denmark, which was designed to recover and donate up to 100,000 MWh of waste heat annually to the local district heating network. Heat pumps play an important role in raising coolant temperatures so recovered heat can be reused in district heating. They are not a peripheral option but a key enabler of this end use.

Figure 1: Isometric diagram showing waste heat from a data center captured via liquid cooling, boosted by a heat pump, and redistributed through a district heating network to nearby residential and commercial buildings.

Why heat reuse matters

Reuse creates value

Where conditions allow, heat reuse turns data center heat from a disposal challenge into a practical resource. It does not eliminate cooling costs, but it can create value from heat that must be removed anyway.

Responsible operations improve

Heat reuse is one way data centers can make better use of the energy already moving through their facilities. Vertiv’s responsible business article explains how excess heat from IT equipment and cooling systems can be captured and redirected for practical uses, from district heating to other nearby applications.

Learn more: Redefining efficiency: How and why data centers are embracing heat reuse

Communities may benefit

Heat reuse can strengthen the social license for new AI factory development when facilities contribute recovered heat to local heating infrastructure. Because recovered heat must be transported through dedicated thermal infrastructure, reuse works best when nearby buildings, campuses, district heating networks, or industrial users can put that recovered heat to work.

Regulation is increasing

Some jurisdictions are moving beyond encouragement toward regulation. Germany’s Energy Efficiency Act requires new data centers to meet a minimum energy reuse factor of 10% as of July 2026, with higher thresholds in later years.

Projects in Denmark and Finland already show how data center waste heat can be integrated into district heating networks, while the European Commission has made waste heat utilization part of its broader push for more energy-efficient data centers.

Heat reuse should shape the design brief

Operators who plan for heat recovery and reuse from the beginning, integrating heat exchangers, heat pumps, and distribution infrastructure into the facility plan, will be better positioned to capture economic value and support practical community applications as AI infrastructure scales.

The industry should also continue to look beyond today’s low-grade heat applications. As liquid cooling, heat pumps, controls, and thermal chain design improve, the question will not be how much heat data centers produce, but how much of it can be put to work.

Explore how adaptive, resilient liquid cooling is reshaping data center infrastructure in Vertiv Frontiers.


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