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Orbital Data Centers: Content ($M/MW) Implications for Cooling Equipment Players
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Orbital Data Centers: Content ($M/MW) Implications for Cooling Equipment Players
3 August 2026
U.S. Multi Industry & Electrical Equipment
Orbital Data Centers: Content ($M/MW) Implications for Cooling
Equipment Players
As AI infrastructure continues to scale, industry participants are increasingly evaluating Varun Govindaraj
+1 917 344 8543 alternative approaches to meeting the growing requirements for power, cooling and
varun.govindaraj@bernsteinsg.com physical infrastructure. Bernstein recently initiated coverage on SpaceX, highlighting the
company's position at the center of the rapidly evolving space economy and its role in
Chad Dillard enabling new classes of orbital data centers. Building on that work, we explore one of the
+1 917 344 8469
chad.dillard@bernsteinsg.com more technical themes emerging at this intersection of AI and space: how liquid cooling
systems would evolve in the context of data centers in space. Our hypothesis suggests
Alasdair Leslie that the underlying cooling architecture is largely an extension of technologies already
+44 20 7762 4952 used widely in traditional satellite and spacecraft designs. The key question is therefore
alasdair.leslie@bernsteinsg.com not whether an orbital data center can be cooled, but rather how the cooling system would
be designed, what components would be required, and which suppliers are potentially
Douglas S. Harned, Ph.D.
+1 917 344 8430 exposed to the opportunity.
douglas.harned@bernsteinsg.com
Similar to terrestrial (land-based) facilities, virtually all electrical power consumed by
Stacy A. Rasgon, Ph.D. compute hardware ultimately becomes heat. The difference is that, in orbit, heat cannot
+1 213 559 5917 be removed through convection because no atmosphere exists. Instead, thermal energy
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