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	<title>magnetic levitation compressor &#8211; Jain.com</title>
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	<title>magnetic levitation compressor &#8211; Jain.com</title>
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		<title>Two Degrees Decide Whether an AI Cooling Unit Is 5 MW or 3 MW — and How Many You Buy</title>
		<link>/clivet-magnetic-levitation-compressor-ai-cooling-cdu-3mw-5mw-debut/</link>
		
		<dc:creator><![CDATA[Deepak Jain]]></dc:creator>
		<pubDate>Sun, 20 Sep 2026 11:26:33 +0000</pubDate>
				<category><![CDATA[Cooling Infrastructure]]></category>
		<category><![CDATA[AI infrastructure]]></category>
		<category><![CDATA[Clivet]]></category>
		<category><![CDATA[coolant distribution unit]]></category>
		<category><![CDATA[data center cooling]]></category>
		<category><![CDATA[liquid cooling]]></category>
		<category><![CDATA[magnetic levitation compressor]]></category>
		<category><![CDATA[thermal management]]></category>
		<guid isPermaLink="false">/clivet-magnetic-levitation-compressor-ai-cooling-cdu-3mw-5mw-debut/</guid>

					<description><![CDATA[Clivet debuted a next-generation magnetic levitation compressor and an AI data center cooling portfolio at AI Infra Summit 2026 in Santa Clara. Its high-capacity coolant distribution unit is rated up to 3 MW at a 3K approach or 5 MW at 5K — the water spec, not the box, sets usable capacity per cabinet.]]></description>
										<content:encoded><![CDATA[<div class="jain-post-grid">
<div class="jain-post-main">
<section class="jain-tldr" aria-label="Plain-English summary">
<p class="jain-tldr-kicker">TL;DR · 30-second read</p>
<h2>The Short Version</h2>
<p>Artificial intelligence runs inside warehouse-sized buildings packed with computers that get extremely hot. Getting that heat out has become one of the hardest and costliest parts of building them.</p>
<p>On September 19 in Santa Clara, California, the Italian air-conditioning maker Clivet showed a new range of cooling equipment built for those buildings, including its largest heat-removal unit yet.</p>
<p>The catch is in the fine print. That unit only reaches full strength if operators let the cooling water run slightly warmer. Ask it for water two degrees colder and it carries about 40 percent less heat — so you need more machines, and more floor space to put them on.</p>
</section>
<p>Clivet said in a September 19 press release that it made the global debut of its next-generation magnetic levitation compressor at AI Infra Summit 2026 in Santa Clara, California, under a &#8220;DUO POWER BOOST&#8221; theme. The compressor uses a dual-rotor, two-stage architecture in which each rotor and impeller varies speed independently to suit different flow rates and pressure ratios.</p>
<p>Alongside it, the company showed a data center cooling portfolio spanning air-cooled magnetic levitation chillers, a &#8220;magnetic CDU&#8221; that merges the cooling source with liquid-cooling distribution, high-capacity coolant distribution units, fan walls and terminal units. The largest CDU on display is rated up to 3 MW at a 3K approach temperature difference or 5 MW at 5K, with predictive control holding temperature fluctuation within ±0.5°C and key components replaceable online. Clivet also staged a joint power-and-cooling coordination demonstration with CLOU, which supplied energy storage and power delivery.</p>
<h2>Executive Summary</h2>
<p>This is a product debut rather than a contract announcement: no customer, no order book, no ship date. What makes it worth reading closely is a single line in the specification. The same coolant distribution unit — the box that takes heat from the water loop running through server racks and hands it to the building&#8217;s chilled-water system — is rated at 3 MW or 5 MW depending on nothing more than how close the two water temperatures are allowed to get.</p>
<p>That gap, called the approach temperature difference, is normally treated as a plumbing detail. At AI rack densities it is a capacity decision. A two-kelvin change in the specification moves roughly 2 MW of heat rejection per unit, which translates directly into how many CDUs an operator buys, how much floor space they consume and how much pipework threads the room.</p>
<p>The wider signal is a European HVAC manufacturer re-pointing core product lines — chillers, compressors, air handling — at AI thermal loads, and pairing them with an energy-storage partner so that power and cooling arrive as one conversation. Clivet has disclosed an architecture and a capacity envelope. It has not disclosed efficiency ratings, availability, pricing or a single deployment.</p>
<h2>The Spec Sheet, Not the Steel, Sets the Megawatts</h2>
<p>Read the CDU rating again: up to 3 MW at 3K approach temperature difference, or 5 MW at 5K. Approach temperature is the gap between the facility water a chiller plant delivers and the warmer technology-side water that actually circulates through cold plates on the processors. A heat exchanger&#8217;s duty scales with the temperature difference driving it, so widening the approach from 3K to 5K — a factor of 1.67 — lifts the rating from 3 MW to 5 MW, also a factor of 1.67. The ratings track heat-exchanger physics almost exactly. Nothing inside the cabinet changed.</p>
<p>The operational consequence is the part buyers underestimate. An operator whose chip vendor mandates cold inlet water, and who therefore specifies a tight 3K approach, is buying a 3 MW machine at the price and footprint of a 5 MW one. Sizing a 30 MW hall needs ten units instead of six, with the extra floor area, valve sets, pipe runs, commissioning hours and maintenance headcount that go with them. Conversely, an operator who can accept warmer technology-side water recovers roughly 67 percent more capacity per unit — and typically unlocks more free-cooling hours upstream, because warmer facility water lets the chiller&#8217;s compressors idle for more of the year.</p>
<p>That uplift is not free, and Clivet&#8217;s release does not price it. Moving 5 MW instead of 3 MW through the same unit means proportionally more flow at a given temperature rise, which means pump power, larger secondary pipework and higher pressure drop. Flow rates, pump curves and pressure-drop figures were not published. The honest reading is that the 5 MW headline number is real but conditional, and the condition is set by the silicon vendor&#8217;s inlet temperature limit, not by the cooling vendor.</p>
<h2>Why Magnetic Levitation, and Why the Compressor Is the Announcement</h2>
<p>A magnetic levitation compressor spins its impellers on magnetic bearings rather than oil-lubricated ones. Removing oil removes a chronic efficiency tax: over time, oil migrates into heat exchangers and films the tube walls, degrading heat transfer in exactly the equipment whose job is heat transfer. Oil-free machines also tolerate frequent starts and hold efficiency well at part load — which matters because a data center chiller plant almost never runs at design load.</p>
<p>Clivet&#8217;s specific claim is architectural. The DUO POWER BOOST design puts two rotors in a two-stage compression path and lets each vary speed independently, so the machine can trade flow against pressure ratio as ambient conditions and IT load move. In principle that widens the efficient operating envelope, which is the right target for a facility whose load profile swings with training runs and whose lift changes with the seasons.</p>
<p>What is substantiated here is a design description. What is not substantiated is performance. The release contains no coefficient of performance, no part-load efficiency figure such as IPLV or NPLV, no capacity range for the chillers, no refrigerant, no sound data and no third-party certification. Those are the numbers a consulting engineer actually specifies against, and until they exist the compressor is an architecture rather than a comparable product.</p>
<h2>Selling Power and Cooling as One Problem</h2>
<p>The joint demonstration with CLOU — energy storage and power delivery on one side, thermal management on the other — is commercially more interesting than it looks. Clivet&#8217;s own framing is that power configuration, thermal design, space layout and maintenance planning have to be settled together in a project&#8217;s earliest stages. That is a fair description of where high-density projects slip: the electrical and mechanical designs are often procured by different teams on different schedules, and the mismatch surfaces at commissioning.</p>
<p>Packaging across that boundary is a recognisable vendor strategy in this market, and it is a response to buyer behaviour rather than a technical breakthrough. Operators building AI halls increasingly want a single party accountable for the megawatt from the switchgear to the cold plate, because integration risk is what delays revenue.</p>
<p>The limits should be stated plainly. What was shown was a coordinated demonstration, not a disclosed commercial arrangement. Neither company published a joint product, a reference architecture, a territory split, an exclusivity term or a customer that has bought the combination. Until one of those appears, this is a booth, not a venture.</p>
<h2>A European HVAC Line Re-Aimed at AI Heat</h2>
<p>The portfolio&#8217;s shape is the story for the wider industry. Clivet showed facility-side air-cooled chillers, a magnetic CDU that folds the cooling source and the liquid distribution loop into one machine, high-capacity CDUs for secondary-side distribution, fan walls and terminal units — coverage from outdoor heat rejection to the rack. That is a general-purpose comfort-and-process HVAC catalogue being re-cut for a single vertical, and it puts Clivet into a tier already crowded with Vertiv, Schneider Electric&#8217;s Motivair, Boyd, nVent, Munters and Modine.</p>
<p>The magnetic CDU is the genuinely differentiated item in the list, because combining chiller and distribution in one enclosure removes an interface — and interfaces are where commissioning time and finger-pointing live. It also concentrates risk, which is presumably why the release stresses online replacement of key components and ±0.5°C predictive control. Tight temperature stability matters for cold-plate systems because dew point and thermal cycling both sit close to the operating envelope; a loop that overshoots risks condensation on cold plates or stress on solder joints.</p>
<p>For buyers, the practical takeaway is that the competitive question in this tier is no longer whether a vendor offers liquid cooling. It is whose ratings survive the approach temperature their silicon demands, and who will put efficiency and availability numbers behind the architecture.</p>
<h2>Background</h2>
<p>Clivet is an Italian heating, ventilation and air-conditioning manufacturer based in Feltre, in the Veneto region, and has been majority-owned by China&#8217;s Midea Group since 2016. Its traditional business spans chillers, heat pumps and air-handling equipment for commercial and industrial buildings — a catalogue it is now re-aiming at data centers, where thermal design has become a primary constraint on how much computing capacity a building can hold.</p>
<p>AI Infra Summit, held in Santa Clara in the heart of Silicon Valley, has become a gathering point for the supply chain behind AI buildout: chips, power, networking and increasingly cooling. The shift to direct-to-chip liquid cooling has drawn in vendors from adjacent markets — industrial refrigeration, automotive thermal, building HVAC — because a coolant distribution unit is, at bottom, a pump, a heat exchanger and a controller, all of which these companies already build at scale. What they must prove to data center buyers is uptime, serviceability and certified performance, which is why the specification sheet, not the stage demonstration, is where these launches are ultimately judged.</p>
<section class="jain-sources" aria-label="Sources">
<h2>Sources</h2>
<p>Source: <a href="https://www.prnewswire.com/news-releases/duo-power-boost-clivet-debuts-next-gen-magnetic-levitation-technology-and-ai-cooling-portfolio-at-ai-infra-summit-2026-302883902.html">DUO POWER BOOST: Clivet Debuts Next-Gen Magnetic Levitation Technology and AI Cooling Portfolio at AI Infra Summit 2026</a> — the company&#8217;s September 19, 2026 announcement detailing its magnetic levitation compressor architecture, CDU capacity ratings and a joint power-and-cooling demonstration with CLOU.</p>
</section>
</div>
<aside class="jain-rail">
<section class="jain-gaps" aria-label="What the release does not say">
<p class="jain-gaps-kicker"><img src="https://www.jain.com/assets/img/dbaaff79-26a0.png" alt="⚠" class="wp-smiley" style="height: 1em; max-height: 1em;" /> What They Aren’t Saying</p>
<h2>What the Release Doesn&#8217;t Say</h2>
<ul>
<li><strong>Efficiency.</strong> Clivet published no coefficient of performance, no part-load ratings such as IPLV or NPLV, and no comparison against its previous compressor generation. &#8220;DUO POWER BOOST&#8221; is a theme, not a number.</li>
<li><strong>Capacity and refrigerant.</strong> The chiller range, tonnage steps, refrigerant choice and global-warming-potential compliance under European F-Gas rules are not stated.</li>
<li><strong>Availability and market.</strong> No ship date, no order lead time, no regional availability, no pricing, and no word on North American certification such as AHRI ratings or UL listings — despite the debut taking place in California.</li>
<li><strong>Hydraulics behind the 5 MW number.</strong> Flow rates, pressure drop, pump power and pipe sizing for the 3K versus 5K operating points were not disclosed, so the true cost of the larger rating is unquantified.</li>
<li><strong>The ±0.5°C and online-replacement claims.</strong> Which components are replaceable while the loop is live, under what load, and under what conditions the control tolerance was measured, are all unspecified.</li>
<li><strong>Customers and deployments.</strong> Neither company named a data center operator, a pilot site, a contracted megawatt figure or a shipped unit count.</li>
<li><strong>The CLOU relationship.</strong> Whether the two firms have a commercial agreement, a joint roadmap, exclusivity, or a defined split of scope and geography is not addressed; only a demonstration was described.</li>
</ul>
</section>
<section class="jain-faq">
<h2>Frequently Asked Questions</h2>
<h3>What did Clivet announce at AI Infra Summit 2026?</h3>
<p>Clivet made the global debut of its next-generation magnetic levitation compressor under the DUO POWER BOOST theme, and showed a data center cooling portfolio covering chillers, coolant distribution units, fan walls and terminal units, plus a joint power-and-cooling demonstration with CLOU.</p>
<h3>What is a magnetic levitation compressor?</h3>
<p>It is a compressor whose impellers spin on magnetic bearings instead of oil-lubricated ones. Removing oil avoids oil migrating into heat exchangers and degrading heat transfer, and the design tolerates frequent starts and holds efficiency well at partial load.</p>
<h3>What does DUO POWER BOOST refer to?</h3>
<p>It is Clivet&#8217;s name for a dual-rotor, two-stage compression architecture. Each rotor and its impeller varies speed independently, so the machine can adapt to different flow rates and pressure ratios as data center load and water temperatures change.</p>
<h3>What is a CDU in data center cooling?</h3>
<p>A coolant distribution unit sits between the building&#8217;s chilled-water system and the liquid loop that runs through server racks. It transfers heat between the two loops and controls the temperature, flow and pressure of the water reaching the chips.</p>
<h3>What is approach temperature difference?</h3>
<p>It is the gap between the facility water supplied by the cooling plant and the technology-side water delivered to the racks. A wider approach gives a heat exchanger more driving force, so the same hardware can move more heat.</p>
<h3>Why is the same Clivet CDU rated at both 3 MW and 5 MW?</h3>
<p>Because the rating depends on the approach temperature. Clivet lists up to 3 MW at a 3K approach and 5 MW at 5K. Widening the approach by a factor of 1.67 raises capacity by the same factor, which is what heat-exchanger physics predicts.</p>
<h3>Why does that matter to a data center operator?</h3>
<p>It changes how many units you buy. Specifying a tight 3K approach means roughly 40 percent less capacity per unit than at 5K, so a given hall needs more CDUs, more floor space, more pipework and more commissioning time for the same megawatts.</p>
<h3>Does running warmer water save energy?</h3>
<p>Generally yes at the plant level. Warmer facility water lets chillers work against a smaller lift and extends free-cooling hours. The trade-off is that warmer coolant must still keep processors within their inlet temperature limits, which the chip vendor sets.</p>
<h3>What is the magnetic CDU Clivet showed?</h3>
<p>It combines the cooling source and the liquid-cooling distribution function in a single machine, rather than pairing a separate chiller with a separate CDU. That removes an interface between systems, which is often where integration delays occur.</p>
<h3>What does ±0.5°C predictive temperature control achieve?</h3>
<p>Tight temperature stability matters for direct-to-chip cooling because the loop operates near the dew point and because repeated thermal swings stress solder joints and seals. Clivet says the high-capacity CDU holds fluctuation within half a degree.</p>
<h3>Who is CLOU and what did the two companies demonstrate?</h3>
<p>CLOU supplied energy storage and power delivery capability in a joint power-and-cooling coordination demonstration with Clivet, which provided the thermal side. The aim was to show power and cooling being planned together early in a project.</p>
<h3>Is there a commercial agreement between Clivet and CLOU?</h3>
<p>None was disclosed. The announcement describes a joint demonstration of coordinated power and cooling planning. No joint product, contract, territory split, exclusivity or shared customer was named.</p>
<h3>Did Clivet publish efficiency figures or pricing?</h3>
<p>No. The release describes the compressor architecture and CDU capacity but gives no coefficient of performance, no part-load efficiency rating, no refrigerant, no chiller capacity range, no pricing and no availability date.</p>
<h3>Why are AI racks harder to cool than traditional servers?</h3>
<p>AI accelerators concentrate far more power into the same cabinet volume than general-purpose servers, and air struggles to carry that heat away. Clivet cites high-temperature performance degradation, efficiency bottlenecks and reliability risk as the resulting pressures.</p>
<h3>What should a buyer ask before specifying this equipment?</h3>
<p>Ask for the rating at your actual approach temperature, the flow rate and pressure drop that rating assumes, part-load efficiency data, which components are replaceable while the loop is live, regional certification, and lead times to delivery.</p>
<h3>What does this signal about the cooling market?</h3>
<p>A European HVAC manufacturer is re-cutting core product lines for AI thermal loads and pairing them with an energy-storage partner. The competitive question in this tier is shifting from whether a vendor offers liquid cooling to whose ratings hold at the temperatures the silicon demands.</p>
</section>
</aside>
</div>
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