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	<title>two-phase cooling &#8211; Jain.com</title>
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	<description>Data centers, connectivity, and security — news and analysis</description>
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	<title>two-phase cooling &#8211; Jain.com</title>
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	<item>
		<title>ZutaCore Raises $100M Series C to Scale Two-Phase AI Data Center Cooling</title>
		<link>/zutacore-100m-series-c-two-phase-liquid-cooling-ai-data-centers/</link>
		
		<dc:creator><![CDATA[Deepak Jain]]></dc:creator>
		<pubDate>Sat, 06 Jun 2026 16:00:00 +0000</pubDate>
				<category><![CDATA[Cooling Infrastructure]]></category>
		<category><![CDATA[AI data centers]]></category>
		<category><![CDATA[direct-to-chip cooling]]></category>
		<category><![CDATA[liquid cooling]]></category>
		<category><![CDATA[Series C funding]]></category>
		<category><![CDATA[thermal management]]></category>
		<category><![CDATA[two-phase cooling]]></category>
		<category><![CDATA[ZutaCore]]></category>
		<guid isPermaLink="false">/zutacore-100m-series-c-two-phase-liquid-cooling-ai-data-centers/</guid>

					<description><![CDATA[ZutaCore raised a $100 million Series C to expand its two-phase liquid cooling platform for AI data centers, the latest sign that investors see thermal management as a bottleneck. We examine how direct-to-chip two-phase cooling works, why capital keeps flowing into the cooling layer, and what it leaves undisclosed.]]></description>
										<content:encoded><![CDATA[<div class="jain-post-grid">
<div class="jain-post-main">
<p>ZutaCore, a developer of two-phase, direct-to-chip liquid cooling technology, has raised a $100 million Series C round to expand its cooling platform for AI data centers, according to a report published by Pulse 2.0 on June 6, 2026. The reported purpose of the raise is to scale the company&#8217;s platform as AI workloads push rack power densities beyond what air cooling can handle.</p>
<h2>Executive Summary</h2>
<p>The headline fact is simple: ZutaCore has secured $100 million in Series C funding to expand its AI data center cooling platform. At that size, the round places ZutaCore among the better-capitalized independent players in liquid cooling, a segment that has moved from niche engineering concern to strategic infrastructure category in roughly three years.</p>
<p>Why it matters: modern AI accelerators draw hundreds of watts per chip, and racks packed with them can reach power densities that air-based cooling physically cannot dissipate economically. That has turned the cooling layer — cold plates, coolant distribution units, dielectric fluids, and the engineering services around them — into one of the most actively funded niches in data center infrastructure. A $100 million commitment to a two-phase cooling specialist signals that investors believe the transition to liquid cooling is durable, and that there is room in the market beyond the largest incumbent thermal vendors.</p>
<h2>Capital Keeps Flooding the Cooling Layer</h2>
<p>Cooling used to be a line item buyers negotiated down. In the AI build-out it has become a gating constraint: if you cannot remove the heat, you cannot deploy the chips, no matter how much power or floor space you have. That inversion explains why investors have poured money into thermal specialists across every approach — single-phase cold plates, immersion tanks, rear-door heat exchangers, and two-phase systems like ZutaCore&#8217;s. A $100 million Series C for a company focused specifically on the AI cooling problem fits squarely into that pattern and suggests the funding window for the category remained open as of mid-2026.</p>
<p>The strategic logic for investors is that cooling vendors sit at a chokepoint. Every generation of AI accelerator raises thermal design power — the amount of heat a chip is engineered to shed — and each increase expands the addressable market for liquid cooling retrofits and new builds alike. The risk, equally, is that a crowded field of well-funded competitors compresses margins before any single vendor achieves scale.</p>
<h2>What Two-Phase Cooling Actually Is — and Why It Is Contested Ground</h2>
<p>Most liquid cooling deployed today is single-phase direct-to-chip: water or a water-glycol mix flows through a cold plate bolted to the processor, absorbs heat, and carries it away without changing state. Two-phase cooling instead uses an engineered dielectric fluid — a liquid that does not conduct electricity — that boils on contact with the hot chip. The phase change from liquid to vapor absorbs far more energy per unit of fluid than simple warming does, which is the core efficiency argument for the approach. ZutaCore has long positioned its platform around this waterless, two-phase principle, marketing it as eliminating the risk of water leaks onto expensive electronics.</p>
<p>The counterarguments are practical rather than theoretical. Two-phase systems are mechanically more complex, the specialty fluids cost more than water, and the fluorinated chemistries commonly used in the category face growing regulatory scrutiny in several jurisdictions. Meanwhile single-phase cold plates have become the default choice for the current generation of AI racks because hyperscalers understand water. ZutaCore&#8217;s raise is, implicitly, a bet that as chip power keeps climbing, the physics advantage of phase change wins share back from the simpler incumbent approach. The release, as reported, does not detail how the company plans to argue that case to buyers.</p>
<h2>Winners, Losers, and the Consolidation Question</h2>
<p>If the round accelerates ZutaCore&#8217;s manufacturing and deployment capacity, the immediate beneficiaries are data center operators seeking alternatives to water-based cooling — particularly in facilities where water usage or leak risk is a board-level concern. Chipmakers benefit from any credible expansion of thermal headroom, since cooling capability directly constrains how they can specify future products.</p>
<p>The open competitive question is whether independent cooling specialists remain independent. The thermal management sector has seen sustained acquisition interest from large industrial and infrastructure players, and a well-funded specialist with differentiated technology is a natural target. A Series C of this size can be read two ways: as fuel for a run at standalone scale, or as valuation-building ahead of eventual consolidation. The reporting available does not indicate which trajectory ZutaCore&#8217;s investors have in mind.</p>
<h2>Background</h2>
<p>ZutaCore is a specialist in waterless, two-phase, direct-to-chip liquid cooling, an approach it has promoted for years as a safer and denser alternative to water-based cold plates. The company sells the hardware and supporting infrastructure that let standard servers shed heat through a dielectric fluid that vaporizes on the processor, and it has positioned that platform squarely at the AI data center market as accelerator power consumption has climbed.</p>
<p>The broader context is a rapid industry transition: liquid cooling moved from a high-performance-computing niche to mainstream AI infrastructure in the mid-2020s, drawing venture capital, private equity, and acquisition interest across cold plate, immersion, and two-phase vendors alike. ZutaCore&#8217;s Series C lands in the middle of that capital wave.</p>
<p>Source: <a href="https://news.google.com/rss/articles/CBMinwFBVV95cUxNc2s5dGZyVGxFd0gzdWxScnNGNkFzVTlRajFmZlNHYmt3X296ZHJ2cUIxS0FYci14dkRsT2V6VW9VREFmckIzVXpSNTlpbGFxYklSQVd6blB2S1FJUDdTblFWVTdfWmFzZGY1YWNWSGd1MDhCT203SW5GYmlQbkliM2ZpRGRTVkhsZ254Rm9BZ1BCeDVRblJSTy1sUGxkekHSAaQBQVVfeXFMTUg1ZG1MZktFZ0xqZ052TEUxR01TVmV5aVFOMXhkYk5tTHNsUHRMQTQzNGhSaHZpTHVWT3U5SXE1S2I1dXo0TklSNUJhTEpHcHBKZE5FRGtqamtqWG1wcVFXZTI2MFVtTGk1WEEtVjlTUTVjdm9UZkZ1LV9TLTlyRVBLNVVSYUt0R1UwcXBUWUJ2eVB2WDBmNXlZWmloa3Ftd2RBaGw?oc=5">ZutaCore: $100 Million Series C Raised To Expand AI Data Center Cooling Platform</a> — Pulse 2.0 report, June 6, 2026, on ZutaCore&#8217;s Series C funding round for AI data center cooling.</p>
</div>
<aside class="jain-rail">
<section class="jain-gaps" aria-label="What the release does not say">
<p class="jain-gaps-kicker">⚠ What They Aren’t Saying</p>
<h2>What the Release Doesn&#8217;t Say</h2>
<ul>
<li><strong>Who invested, and at what valuation?</strong> The report as surfaced names the round size but not the lead investor, the syndicate, or the company&#8217;s post-money valuation — all of which shape how much runway and pricing power ZutaCore actually gains.</li>
<li><strong>Use of proceeds and capacity numbers.</strong> &#8220;Expand the platform&#8221; is not a plan. There are no disclosed figures for manufacturing capacity, headcount, geographic expansion, or R&#038;D allocation.</li>
<li><strong>Customer traction.</strong> The report does not identify deployed megawatts, named customers, OEM design wins, or revenue — the metrics that would distinguish commercial momentum from category enthusiasm.</li>
<li><strong>Fluid strategy.</strong> Two-phase cooling depends on specialty dielectric fluids, a supply chain facing both concentration and regulatory pressure on fluorinated chemistries. The announcement offers no detail on how ZutaCore is positioned on this front.</li>
</ul>
</section>
<section class="jain-faq">
<h2>Frequently Asked Questions</h2>
<h3>What did ZutaCore announce?</h3>
<p>According to a June 6, 2026 Pulse 2.0 report, ZutaCore raised a $100 million Series C funding round to expand its cooling platform for AI data centers.</p>
<h3>What does ZutaCore do?</h3>
<p>ZutaCore develops two-phase, direct-to-chip liquid cooling for data center servers. Its systems use a waterless dielectric fluid that boils on contact with hot processors, absorbing heat through the phase change rather than by warming water in a cold plate.</p>
<h3>What is two-phase liquid cooling?</h3>
<p>It is a cooling method in which a non-conductive fluid changes state from liquid to vapor on the hot chip surface. Because evaporation absorbs far more energy than simply heating a liquid, two-phase systems can move more heat with less fluid than single-phase alternatives.</p>
<h3>How is two-phase cooling different from the cold plates most AI racks use today?</h3>
<p>Most deployed liquid cooling is single-phase: water or water-glycol flows through a cold plate and carries heat away without boiling. Two-phase systems replace water with a dielectric fluid that vaporizes on the chip, trading mechanical simplicity for higher heat-removal capacity and no water at the server.</p>
<h3>Why do AI data centers need liquid cooling at all?</h3>
<p>AI accelerator chips draw hundreds of watts each, and racks of them can exceed 100 kilowatts. Air simply cannot carry heat away fast enough at those densities without impractical airflow and energy costs, so operators are shifting heat removal into liquids.</p>
<h3>How much did ZutaCore raise, and in what round?</h3>
<p>The company reportedly raised $100 million in a Series C round. Series C typically indicates a company scaling a proven product rather than developing an early prototype.</p>
<h3>Who invested in ZutaCore&#x27;s Series C?</h3>
<p>The report as surfaced does not name the lead investor or syndicate. Investor identity matters here because strategic backers, such as industrial or chip-adjacent firms, would signal different intentions than purely financial investors.</p>
<h3>What will ZutaCore do with the money?</h3>
<p>The stated purpose is to expand its AI data center cooling platform. No specific breakdown across manufacturing, R&#038;D, hiring, or geographic expansion was disclosed in the available reporting.</p>
<h3>Is ZutaCore&#x27;s valuation known?</h3>
<p>No. The reporting available discloses the round size but not the company&#8217;s valuation, so it is not possible to gauge how investors priced the business or how dilutive the raise was.</p>
<h3>What is the main selling point of waterless cooling?</h3>
<p>It removes the risk of water leaking onto expensive electronics and reduces facility water dependence. For operators in water-stressed regions or with strict risk policies, eliminating water at the rack is a meaningful differentiator.</p>
<h3>What are the drawbacks of two-phase cooling?</h3>
<p>Greater mechanical complexity, higher fluid costs than water, and dependence on engineered dielectric fluids — many of which are fluorinated chemistries facing regulatory scrutiny in several jurisdictions. Buyers also tend to prefer technologies their teams already know how to operate.</p>
<h3>Who competes with ZutaCore?</h3>
<p>The liquid cooling field includes single-phase cold plate suppliers, immersion cooling vendors, rear-door heat exchanger makers, and large incumbent thermal management companies. It is a crowded, well-funded category with multiple credible approaches.</p>
<h3>Does this funding round prove the technology is winning in the market?</h3>
<p>No. A large raise shows investor conviction, but the reporting includes no customer names, deployed capacity, or revenue figures. Commercial traction would need to be demonstrated separately from fundraising success.</p>
<h3>What does this mean for data center operators evaluating cooling options?</h3>
<p>It suggests two-phase cooling will remain a funded, supported option rather than an orphaned technology — one practical risk buyers weigh with startups. Operators should still press vendors on fluid supply, serviceability, and reference deployments before committing.</p>
<h3>Why are investors putting so much capital into cooling specifically?</h3>
<p>Cooling has become a gating constraint on AI deployment: chips cannot run if their heat cannot be removed. Every generation of accelerator raises thermal output, expanding the market for liquid cooling in both new builds and retrofits, which makes the layer attractive to investors.</p>
</section>
</aside>
</div>
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]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Two-Phase or Single-Phase? The Liquid Cooling Decision Shaping AI Data Centers</title>
		<link>/two-phase-vs-single-phase-direct-to-chip-liquid-cooling-ai-data-centers/</link>
		
		<dc:creator><![CDATA[Deepak Jain]]></dc:creator>
		<pubDate>Fri, 29 May 2026 16:00:00 +0000</pubDate>
				<category><![CDATA[Cooling Infrastructure]]></category>
		<category><![CDATA[AI data centers]]></category>
		<category><![CDATA[data center design]]></category>
		<category><![CDATA[direct-to-chip]]></category>
		<category><![CDATA[liquid cooling]]></category>
		<category><![CDATA[rack density]]></category>
		<category><![CDATA[thermal management]]></category>
		<category><![CDATA[two-phase cooling]]></category>
		<guid isPermaLink="false">/two-phase-vs-single-phase-direct-to-chip-liquid-cooling-ai-data-centers/</guid>

					<description><![CDATA[Two-phase vs single-phase direct-to-chip liquid cooling is the engineering fork in the road for AI data centers in 2026. We examine how each approach works, the trade-offs in fluids, pressure, and serviceability, and the questions operators should ask before committing a multi-year design to either camp.]]></description>
										<content:encoded><![CDATA[<div class="jain-post-grid">
<div class="jain-post-main">
<p>Data Center Dynamics has published a comparison of the two competing approaches to direct-to-chip liquid cooling — single-phase, where a liquid coolant absorbs heat and stays liquid, and two-phase, where the coolant boils at the chip and carries heat away as vapor — framed around a single question: which is right for AI data centers in 2026?</p>
<p>That the trade press is treating this as a live, unsettled debate is itself the news. As AI accelerators push per-chip power beyond what air can remove, direct-to-chip liquid cooling has moved from exotic to expected, and the industry has not yet converged on which of the two variants will define the next generation of facilities.</p>
<h2>Executive Summary</h2>
<p>Direct-to-chip liquid cooling puts a cold plate in contact with the processor and runs coolant through it, removing heat far more efficiently than blowing air across a heatsink. Within that category, two architectures are competing. Single-phase systems circulate a liquid — typically treated water or a water-glycol mix — that warms up as it passes over the chip and is cooled elsewhere. Two-phase systems use an engineered dielectric fluid that boils directly on the cold plate; the phase change from liquid to vapor absorbs a large amount of heat at a nearly constant temperature, and the vapor is condensed back to liquid to repeat the cycle.</p>
<p>The choice matters because it is not easily reversible. Coolant chemistry, pressure ratings, manifolds, coolant distribution units, and facility water loops are all designed around one approach or the other. An operator committing today to a multi-hundred-megawatt AI campus is effectively placing a bet on which architecture will best handle the chips of 2028 and beyond — and on which supply chain, service model, and regulatory environment will mature fastest.</p>
<p>The DCD piece lands at the moment this bet has become unavoidable. Air cooling handled decades of servers; single-phase liquid is handling today&#8217;s AI racks; the open question is whether tomorrow&#8217;s thermal densities force the industry through a second transition to two-phase — or whether single-phase engineering keeps stretching to meet the need.</p>
<h2>Why the Question Exists at All</h2>
<p>For most of computing history, this debate would have been academic. Air cooling was cheap, well understood, and sufficient. AI training hardware broke that equilibrium: modern accelerators concentrate so much power in so little silicon that the limiting factor is no longer the data center&#8217;s chillers but the last few millimeters between the chip surface and the coolant. Direct-to-chip designs attack exactly that bottleneck, which is why they have become the default assumption for new AI builds.</p>
<p>Single-phase direct-to-chip won the first round largely on familiarity. Water-based cooling loops are a known quantity — data center engineers, plumbers, and component suppliers have decades of experience with pumps, valves, and leak management for liquid water. Two-phase systems promise something physically compelling in exchange for novelty: boiling a fluid absorbs latent heat, meaning the coolant can soak up substantially more energy without a large temperature rise, and it does so uniformly across the hottest parts of the chip.</p>
<h2>The Engineering Trade-Offs, Plainly Stated</h2>
<p>Single-phase&#8217;s strengths are operational. The fluids are inexpensive and benign, the components are commodity, leaks are messy but manageable, and the industry&#8217;s existing skills transfer directly. Its weakness is headroom: as chips run hotter, single-phase designs must push more liquid, faster, through smaller channels, and must manage the temperature gradient across the cold plate — the chip&#8217;s inlet edge runs cooler than its outlet edge, which complicates thermal design as power climbs.</p>
<p>Two-phase inverts that profile. Boiling heat transfer offers high performance and near-isothermal operation — the whole cold plate sits close to the fluid&#8217;s boiling point — which is attractive precisely where single-phase strains. But the costs are real: engineered dielectric fluids are far more expensive than water, systems must manage vapor and pressure rather than simple liquid flow, servicing a sealed two-phase loop is a different discipline, and several candidate fluids belong to chemical families (such as PFAS-related compounds) facing regulatory scrutiny in major markets. A technically superior heat-transfer mechanism does not automatically win if its fluid supply or compliance picture is uncertain.</p>
<h2>Who Wins and Loses on Each Path</h2>
<p>If single-phase continues to stretch, the winners are incumbents: established cooling vendors, existing supply chains, and operators who have already deployed water-based loops and want continuity. Chip designers absorb more of the burden, engineering packages and cold plates to live within single-phase limits. If two-phase becomes necessary, the advantage shifts toward specialist fluid and systems companies, and toward operators willing to build new competencies early — with the corresponding risk of backing immature technology.</p>
<p>There is also a middle path worth naming: hybrid facilities, where single-phase handles the bulk of the load and two-phase (or other advanced techniques) is reserved for the hottest components or highest-density halls. Many operators will likely hedge this way rather than commit wholesale, which suggests the 2026 answer to &#8220;which is right?&#8221; may genuinely be &#8220;both, in different places&#8221; — an unsatisfying but rational outcome for an industry making thirty-year infrastructure bets on three-year chip roadmaps.</p>
<h2>What This Means for the Broader Market</h2>
<p>The cooling decision cascades outward. Coolant choice affects how much heat a facility can reject to the outside world and at what temperature, which shapes heat-reuse opportunities and water consumption. It affects colocation providers, who must decide which architecture to offer tenants whose hardware they do not control. And it affects the retrofit market: the vast installed base of air-cooled data centers faces different conversion economics depending on which liquid architecture prevails. Standardization efforts — common connectors, fluid specifications, and safety practices — will matter as much as raw thermal performance in determining which camp scales fastest.</p>
<h2>Background</h2>
<p>Data centers spent decades cooled almost entirely by air: chilled air pushed through raised floors and hot aisles, with per-rack power low enough that fans and heatsinks sufficed. The AI buildout broke that model. Training clusters pack accelerators drawing unprecedented power into dense racks, pushing the industry through its biggest thermal transition since the mainframe era — first to rear-door heat exchangers and now to liquid brought directly to the chip.</p>
<p>Data Center Dynamics, the publication behind this comparison, is a long-running trade outlet covering data center design and operations. That its editorial attention has moved from whether to liquid-cool to which liquid architecture to choose reflects how quickly direct-to-chip cooling has become the baseline assumption for AI infrastructure — and how much unresolved engineering debate still sits beneath that baseline.</p>
<p>Source: <a href="https://news.google.com/rss/articles/CBMi3wFBVV95cUxPOVlIYS1oTmQxUkxwM3hIMlpDQm1qWWM4TUQ3WGpzbnRGNFdkbFNrYW5EUkxnR0RSUTlIMFR4QWZ2MTljOVQwZExteFBfM2xQRFJOamFWc0c5cEhBcGZwLVJKdjBVV3VVOU5Bbk51aVBtMjJnM1JvdFREc29rS1E0eHFjRmYzYTFiRllBdUpGZm9oX2VEX1hCSFNDWXdDSnNPUWExakZ1SWlpa3RyVTJrWEd6XzRaSG5Ld3lESGhyaURUOVBKaVI3anRRektRU19qdHVyY2Fsa3VKems5TFlr?oc=5">Two-phase vs single-phase direct-to-chip liquid cooling: Which is right for AI data centers in 2026</a> — a Data Center Dynamics comparison of the two competing direct-to-chip liquid cooling architectures for AI data centers, published May 29, 2026.</p>
</div>
<aside class="jain-rail">
<section class="jain-gaps" aria-label="What the release does not say">
<p class="jain-gaps-kicker">⚠ What They Aren’t Saying</p>
<h2>What the Release Doesn&#8217;t Say</h2>
<p>As surfaced, this is an analytical comparison piece rather than a product or project announcement, and the summary available leaves the substance of the argument unstated. Key specifics a reader would need are not visible in the source material: quantified performance data comparing the two approaches at current AI rack densities, cost comparisons for fluids and infrastructure, and which vendors or deployments anchor the analysis.</p>
<ul>
<li>Does the piece cite operator deployments at scale for two-phase cooling, or is the two-phase case still built on lab results and vendor claims?</li>
<li>How does it treat the regulatory outlook for engineered dielectric fluids, several of which face PFAS-related restrictions in the EU and elsewhere?</li>
<li>Does it address serviceability and staffing — who repairs a sealed two-phase loop at 3 a.m. — which often decides these debates in practice?</li>
<li>What chip roadmap assumptions underpin its 2026 recommendation, given that the answer hinges on how fast per-chip power actually grows?</li>
</ul>
</section>
<section class="jain-faq">
<h2>Frequently Asked Questions</h2>
<h3>What is direct-to-chip liquid cooling?</h3>
<p>It is a cooling method that attaches a liquid-carrying cold plate directly to a processor, removing heat through contact with coolant rather than blowing air across a heatsink. It targets the exact point where AI chips generate heat, making it far more effective than room-level air cooling.</p>
<h3>What is the difference between single-phase and two-phase liquid cooling?</h3>
<p>In single-phase cooling, the coolant stays liquid the whole time — it warms as it absorbs chip heat and is cooled elsewhere. In two-phase cooling, an engineered fluid boils on the cold plate, absorbing heat through the liquid-to-vapor phase change, then condenses back to liquid to repeat the cycle.</p>
<h3>Why does two-phase cooling absorb more heat?</h3>
<p>Boiling a fluid absorbs latent heat — the energy required to change liquid into vapor — which is much larger than the energy needed to simply warm a liquid. This lets a two-phase system soak up substantial heat while the fluid stays near a constant temperature across the chip.</p>
<h3>Why can&#x27;t air cooling handle modern AI hardware?</h3>
<p>AI accelerators concentrate very high power into small chip areas, and air is a poor conductor of heat. Past a certain density, no practical volume of airflow can remove heat fast enough from the chip surface, so the coolant must make direct contact through a liquid-cooled cold plate.</p>
<h3>Which approach dominates AI data centers today?</h3>
<p>Single-phase direct-to-chip cooling is the more established approach, largely because water-based loops use familiar components and skills that data center operators already have. Two-phase systems are the challenger, promising higher thermal performance at the cost of novelty and more complex fluids.</p>
<h3>What fluids do the two approaches use?</h3>
<p>Single-phase systems typically use treated water or water-glycol mixtures, which are cheap and well understood. Two-phase systems require engineered dielectric fluids — electrically non-conductive liquids with suitable boiling points — which are significantly more expensive and specialized.</p>
<h3>What is the regulatory concern around two-phase cooling fluids?</h3>
<p>Several candidate dielectric fluids belong to chemical families related to PFAS, so-called forever chemicals, which face restriction efforts in the EU and other jurisdictions. Uncertainty about long-term fluid availability and compliance is a genuine risk factor in committing to two-phase designs.</p>
<h3>Is two-phase cooling proven at data center scale?</h3>
<p>That is one of the central open questions. Single-phase has broad production deployment behind it, while two-phase has strong physics and growing vendor activity but a thinner record of large-scale operational history. Buyers should ask vendors for referenceable deployments, not just lab data.</p>
<h3>Why is this decision hard to reverse later?</h3>
<p>Coolant chemistry, pressure ratings, manifolds, coolant distribution units, and facility water loops are all engineered around one architecture. Switching later means reworking infrastructure deep inside a live facility, so the choice made at design time tends to persist for the building&#8217;s life.</p>
<h3>What is a coolant distribution unit (CDU)?</h3>
<p>A CDU is the intermediary between the facility&#8217;s water system and the loop that touches the IT hardware. It manages flow, temperature, and pressure, and isolates the sensitive chip-side loop from the building loop. Both single-phase and two-phase architectures depend on it, in different forms.</p>
<h3>Can a data center use both approaches at once?</h3>
<p>Yes, and hybrid designs are a plausible outcome: single-phase carrying the bulk of the load, with two-phase or other advanced techniques reserved for the hottest components or highest-density halls. Many operators may hedge this way rather than commit wholesale to either camp.</p>
<h3>How does the cooling choice affect serviceability and staffing?</h3>
<p>Single-phase loops resemble familiar plumbing, so existing technician skills largely transfer. Two-phase systems are sealed, pressure-managed loops with specialized fluids, requiring new service procedures and training. Operational readiness often decides these debates as much as thermal performance.</p>
<h3>What should colocation tenants ask their providers?</h3>
<p>Which liquid cooling architectures the facility supports, at what per-rack density, with what connector and fluid standards, and on what timeline. Tenants deploying AI hardware need assurance that the building&#8217;s cooling design will match their chips&#8217; requirements over a multi-year lease.</p>
<h3>How does cooling architecture affect sustainability goals?</h3>
<p>The coolant approach shapes the temperature at which heat leaves the facility, which affects heat-reuse potential, water consumption, and the energy spent on cooling itself. Liquid cooling generally improves efficiency over air, but the two architectures differ in how the gains are realized.</p>
<h3>What would settle the debate between the two approaches?</h3>
<p>Chiefly the chip roadmap: if per-chip power keeps climbing steeply, single-phase designs face mounting strain and two-phase&#8217;s headroom becomes decisive. If growth moderates or packaging innovations spread heat better, single-phase&#8217;s operational simplicity may keep it dominant for years.</p>
</section>
</aside>
</div>
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If growth moderates or packaging innovations spread heat better, single-phase's operational simplicity may keep it dominant for years."}}]}]}</script></p>
]]></content:encoded>
					
		
		
			</item>
		<item>
		<title>Carrier Deepens ZutaCore Bet, Pushing Two-Phase Liquid Cooling Into AI Racks</title>
		<link>/carrier-ventures-zutacore-two-phase-liquid-cooling-ai-data-centers/</link>
		
		<dc:creator><![CDATA[Deepak Jain]]></dc:creator>
		<pubDate>Tue, 28 Apr 2026 16:00:00 +0000</pubDate>
				<category><![CDATA[Cooling Infrastructure]]></category>
		<category><![CDATA[AI data centers]]></category>
		<category><![CDATA[Carrier]]></category>
		<category><![CDATA[data center infrastructure]]></category>
		<category><![CDATA[direct-to-chip cooling]]></category>
		<category><![CDATA[liquid cooling]]></category>
		<category><![CDATA[thermal management]]></category>
		<category><![CDATA[two-phase cooling]]></category>
		<category><![CDATA[ZutaCore]]></category>
		<guid isPermaLink="false">/carrier-ventures-zutacore-two-phase-liquid-cooling-ai-data-centers/</guid>

					<description><![CDATA[Carrier Ventures has expanded its investment in ZutaCore, betting two-phase liquid cooling can keep pace with AI data center heat loads. We analyze why an HVAC incumbent is moving to the chip level, what the announcement substantiates, and the open questions it leaves for data center buyers and investors.]]></description>
										<content:encoded><![CDATA[<div class="jain-post-grid">
<div class="jain-post-main">
<p>Carrier Ventures, the venture arm of HVAC and building-systems giant Carrier Global, announced on April 28, 2026 that it is expanding its investment in ZutaCore, a maker of two-phase, direct-to-chip liquid cooling technology. The stated purpose is to scale liquid cooling for AI data centers, where rapidly rising chip power densities are outrunning traditional air cooling. The announcement, distributed via PR Newswire, did not disclose the size or terms of the expanded investment.</p>
<h2>Executive Summary</h2>
<p>Carrier first backed ZutaCore with a strategic investment and partnership announced in late 2024. This follow-on commitment signals that Carrier sees direct-to-chip cooling — hardware that removes heat at the processor itself rather than from the room around it — as central to its data center strategy, not a side experiment. For a company whose traditional data center business is facility-level equipment such as chillers and air handlers, that is a meaningful shift in where it believes thermal value will be captured.</p>
<p>The &#8216;why now&#8217; is straightforward: AI accelerators have pushed rack power draws from the tens of kilowatts into the hundreds, a range where moving heat with air alone becomes physically and economically impractical. Liquid cooling has moved from niche to necessity for AI deployments, and every major thermal-management vendor is racing to own a piece of the resulting stack. The open question is whether the announcement represents scaled commercial traction or primarily a strategic option on a still-contested technology — the release headline promises scale, but the syndicated text offers no deployment figures, customer names, or dollar amounts to measure it by.</p>
<h2>Why an HVAC Giant Wants Inside the Rack</h2>
<p>Carrier&#8217;s historical position in data centers is at the facility level: chillers, cooling towers, and air-handling systems that condition entire halls. Direct-to-chip cooling changes where the critical engineering happens. When heat is captured at the silicon by cold plates and carried away in fluid loops, the highest-value thermal decisions move from the building to the rack — territory contested by specialists like ZutaCore, CoolIT, and Motivair, and by IT-side players such as Vertiv and the server manufacturers themselves. An expanded investment in ZutaCore is a hedge against disintermediation: if Carrier does not have a credible chip-level offering, it risks being relegated to supplying the commodity heat-rejection equipment at the end of someone else&#8217;s thermal chain.</p>
<p>There is also a plausible offensive logic. A vendor that can pair chip-level heat capture with its own facility-scale heat rejection can sell an integrated thermal chain — from cold plate to cooling tower — which is attractive to operators who currently stitch that chain together from multiple vendors. Whether Carrier and ZutaCore intend to productize such an integrated offering is not stated in the announcement, but it is the strategic prize this kind of pairing points toward.</p>
<h2>Two-Phase Cooling, Explained — and Why It Is Contested Ground</h2>
<p>Most liquid cooling deployed for AI today is single-phase: water or a water-glycol mix flows through a cold plate on the chip, warms up, and carries the heat away. ZutaCore&#8217;s approach is two-phase — a dielectric (non-electrically-conductive) fluid boils directly on the cold plate, absorbing large amounts of heat as it vaporizes, then condenses elsewhere in the loop. The physics advantage is real: boiling absorbs far more heat per unit of fluid than simple warming, which matters as individual accelerator packages climb toward and beyond kilowatt-class heat output. Because the fluid is non-conductive, a leak is also less catastrophic than a water leak inside a server.</p>
<p>The counterweight is ecosystem maturity. Single-phase water cooling is the volume standard for current AI reference designs, with an established supply chain, well-understood operating practices, and trained technicians. Two-phase systems introduce different fluids, pressures, and service procedures, and specialty dielectric fluids carry their own cost and, depending on chemistry, environmental scrutiny. The bet embedded in Carrier&#8217;s investment is that next-generation chip heat densities will strain single-phase designs enough to open a mainstream window for two-phase — a defensible thesis, but one the market has not yet settled.</p>
<h2>What the Announcement Does and Does Not Substantiate</h2>
<p>Read carefully, this is a statement of investor conviction, not a disclosed commercial milestone. A follow-on investment from a strategic corporate backer is a genuine positive signal: corporate venture arms rarely double down on portfolio companies whose technology their own engineers have found wanting. It suggests the 2024 partnership produced enough validation to justify more capital.</p>
<p>What the syndicated release does not provide is the evidence a buyer or investor would need to gauge momentum: the investment amount, ZutaCore&#8217;s resulting valuation or Carrier&#8217;s stake, named customers, deployed megawatts, or manufacturing capacity commitments. &#8216;Scale liquid cooling for AI data centers&#8217; is a direction, not a metric. That does not make the announcement empty — strategic capital and an incumbent&#8217;s distribution reach are real assets for a smaller technology vendor — but the gap between the headline&#8217;s ambition and the disclosed specifics is worth keeping in view. The same skepticism should be applied evenly: competing single-phase vendors&#8217; claims of inevitability are also assertions, not settled fact, in a market where chip roadmaps can shift the thermal calculus every generation.</p>
<h2>Background</h2>
<p>Carrier Global, spun off from United Technologies in 2020, is one of the world&#8217;s largest providers of heating, ventilation, air conditioning, and refrigeration systems, with a long-standing data center business centered on facility-level cooling equipment. ZutaCore, founded in the mid-2010s with roots in Israel, developed a waterless two-phase direct-to-chip cooling platform aimed at high-density computing. The two companies first linked up in late 2024, when Carrier announced a strategic investment and partnership with ZutaCore as part of a broader industry pivot toward liquid cooling.</p>
<p>That pivot has been driven by the AI buildout: accelerator-dense racks have pushed power and heat densities beyond what air cooling can economically handle, turning liquid cooling from a specialty into a core requirement of new AI data center designs and drawing HVAC incumbents, power-infrastructure vendors, and startups into direct competition for the rack thermal stack.</p>
<p>Source: <a href="https://news.google.com/rss/articles/CBMi4AFBVV95cUxObzhCWGc4LVlNS3dYV2R0Rnc3WXRGX2o4Q0lxaXZwN29uRGlpWkY0TnJEVEZfMVY2b0NaQXNsSTNiMnc4STdyX0dqc2RLc2FiWklTZDFzOXZ0YzhtWEhZb05PWTJ4V3BSZzB1b0FxRFFuaVpSbGRCTnFCc3RGT0tWWUtVTHAtSzBtNEo0V2k4R2dYX2VLN0tQVWl4S1BBaXB6cm44NzlFYzB6MnVNckc2Uzg1SzZQUHdyZmNKRnMzMnQ1OE1rRUMxY3VmbzFzMHpNcFl3SUhGNTVPbDIwMHd4Sw?oc=5">Carrier Ventures Expands Investment in ZutaCore to Scale Liquid Cooling for AI Data Centers</a> — PR Newswire announcement, April 28, 2026, describing Carrier&#8217;s expanded strategic investment in two-phase liquid cooling company ZutaCore.</p>
</div>
<aside class="jain-rail">
<section class="jain-gaps" aria-label="What the release does not say">
<p class="jain-gaps-kicker">⚠ What They Aren’t Saying</p>
<h2>What the Release Doesn&#8217;t Say</h2>
<ul>
<li><strong>Deal terms:</strong> The announcement does not disclose the investment amount, Carrier&#8217;s cumulative stake, or ZutaCore&#8217;s valuation — making the scale of the &#8216;doubling down&#8217; impossible to quantify.</li>
<li><strong>Commercial proof points:</strong> No named customers, deployed capacity, or order backlog is cited, so it is unclear how much of the scaling ambition rests on signed demand versus anticipated demand.</li>
<li><strong>Go-to-market structure:</strong> The release does not say whether Carrier will manufacture, distribute, or service ZutaCore systems through its own channels, or whether an integrated chip-to-chiller product is planned.</li>
<li><strong>Technology roadmap fit:</strong> Nothing is stated about qualification with major AI chip or server reference designs, which in practice gates volume adoption of any cold-plate technology.</li>
<li><strong>Fluid supply and lifecycle:</strong> The economics and environmental profile of the dielectric fluids two-phase systems depend on — cost, availability, and regulatory outlook — go unaddressed.</li>
</ul>
</section>
<section class="jain-faq">
<h2>Frequently Asked Questions</h2>
<h3>What did Carrier Ventures announce on April 28, 2026?</h3>
<p>Carrier Ventures announced it is expanding its investment in ZutaCore, a two-phase liquid cooling company, with the stated goal of scaling liquid cooling for AI data centers. The size and terms of the investment were not disclosed in the announcement.</p>
<h3>Who is ZutaCore?</h3>
<p>ZutaCore is a technology company specializing in two-phase, direct-to-chip liquid cooling for servers. Its systems boil a non-conductive dielectric fluid directly on a cold plate attached to the processor, removing heat far more densely than air and without circulating water inside the server.</p>
<h3>What is Carrier Ventures?</h3>
<p>Carrier Ventures is the corporate venture capital arm of Carrier Global, the building-systems company best known for HVAC, refrigeration, and facility cooling equipment. It invests in technologies adjacent to Carrier&#8217;s core climate and energy businesses.</p>
<h3>What is two-phase liquid cooling?</h3>
<p>It is a cooling method where a special non-conductive fluid boils on a plate attached to the chip. The phase change from liquid to vapor absorbs large amounts of heat, which is released when the vapor condenses elsewhere in the loop. Boiling removes far more heat per unit of fluid than simply warming a liquid.</p>
<h3>How does two-phase cooling differ from the liquid cooling used in most AI data centers today?</h3>
<p>Most current AI deployments use single-phase cooling: water or water-glycol flows through cold plates, warms up, and carries heat away without changing state. Two-phase systems use boiling dielectric fluid instead, offering higher heat-removal capacity and no water at the chip, but with a less mature ecosystem, different service practices, and specialty fluid costs.</p>
<h3>Why do AI data centers need liquid cooling at all?</h3>
<p>AI accelerator chips draw and dissipate far more power than traditional servers, pushing racks from tens of kilowatts into the hundreds. At those densities, moving enough air to keep chips within safe temperatures becomes physically impractical and energy-inefficient, so heat must be captured in liquid at or near the chip.</p>
<h3>Is this Carrier&#x27;s first investment in ZutaCore?</h3>
<p>No. Carrier announced an initial strategic investment and partnership with ZutaCore in late 2024. The April 2026 announcement describes an expansion of that investment, signaling continued conviction after roughly a year and a half of working together.</p>
<h3>How much did Carrier invest?</h3>
<p>The announcement does not say. No investment amount, ownership stake, or valuation was disclosed in the syndicated release, which makes the financial scale of the commitment impossible to assess from the public statement alone.</p>
<h3>Why would an HVAC company invest in chip-level cooling?</h3>
<p>As heat capture moves from the room to the chip, the most valuable thermal engineering moves inside the rack — historically outside HVAC vendors&#8217; territory. Investing in ZutaCore gives Carrier a position at the chip level and a potential path to selling an integrated thermal chain from cold plate to facility heat rejection.</p>
<h3>Who competes with ZutaCore and Carrier in this market?</h3>
<p>The AI thermal market is crowded. Direct-to-chip specialists and infrastructure vendors — including Vertiv, CoolIT, Boyd, Motivair (acquired by Schneider Electric), and LiquidStack — compete for rack-level cooling, while server makers increasingly integrate cooling into their own designs. Most rivals today ship single-phase water-based systems.</p>
<h3>Does this announcement mean two-phase cooling is winning?</h3>
<p>No. It means a major incumbent is willing to increase its bet on two-phase technology. Single-phase water cooling remains the volume standard for current AI reference designs. Two-phase adoption at scale likely depends on future chip generations whose heat densities strain single-phase designs — a plausible but unproven thesis.</p>
<h3>What are the main risks to the two-phase cooling bet?</h3>
<p>Ecosystem maturity is the biggest: single-phase has established supply chains, trained technicians, and reference-design support. Two-phase adds specialty dielectric fluids with their own cost and potential environmental scrutiny, different service procedures, and the need to win qualification slots in chip and server vendors&#8217; roadmaps.</p>
<h3>What should data center operators take away from this news?</h3>
<p>That the thermal vendor landscape is consolidating around chip-to-facility integration, and that two-phase cooling now has a well-capitalized incumbent behind it. Operators planning multi-generation AI capacity should track both single-phase and two-phase roadmaps rather than assuming today&#8217;s standard remains fixed.</p>
<h3>What key information is missing from the announcement?</h3>
<p>The investment amount and terms, named customers or deployed capacity, manufacturing and distribution plans, and any statement on qualification with major AI chip or server platforms. Without these, the announcement establishes strategic direction but not commercial momentum.</p>
</section>
</aside>
</div>
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The April 2026 announcement describes an expansion of that investment, signaling continued conviction after roughly a year and a half of working together."}}, {"@type": "Question", "name": "How much did Carrier invest?", "acceptedAnswer": {"@type": "Answer", "text": "The announcement does not say. No investment amount, ownership stake, or valuation was disclosed in the syndicated release, which makes the financial scale of the commitment impossible to assess from the public statement alone."}}, {"@type": "Question", "name": "Why would an HVAC company invest in chip-level cooling?", "acceptedAnswer": {"@type": "Answer", "text": "As heat capture moves from the room to the chip, the most valuable thermal engineering moves inside the rack \u2014 historically outside HVAC vendors' territory. Investing in ZutaCore gives Carrier a position at the chip level and a potential path to selling an integrated thermal chain from cold plate to facility heat rejection."}}, {"@type": "Question", "name": "Who competes with ZutaCore and Carrier in this market?", "acceptedAnswer": {"@type": "Answer", "text": "The AI thermal market is crowded. Direct-to-chip specialists and infrastructure vendors \u2014 including Vertiv, CoolIT, Boyd, Motivair (acquired by Schneider Electric), and LiquidStack \u2014 compete for rack-level cooling, while server makers increasingly integrate cooling into their own designs. Most rivals today ship single-phase water-based systems."}}, {"@type": "Question", "name": "Does this announcement mean two-phase cooling is winning?", "acceptedAnswer": {"@type": "Answer", "text": "No. It means a major incumbent is willing to increase its bet on two-phase technology. Single-phase water cooling remains the volume standard for current AI reference designs. Two-phase adoption at scale likely depends on future chip generations whose heat densities strain single-phase designs \u2014 a plausible but unproven thesis."}}, {"@type": "Question", "name": "What are the main risks to the two-phase cooling bet?", "acceptedAnswer": {"@type": "Answer", "text": "Ecosystem maturity is the biggest: single-phase has established supply chains, trained technicians, and reference-design support. Two-phase adds specialty dielectric fluids with their own cost and potential environmental scrutiny, different service procedures, and the need to win qualification slots in chip and server vendors' roadmaps."}}, {"@type": "Question", "name": "What should data center operators take away from this news?", "acceptedAnswer": {"@type": "Answer", "text": "That the thermal vendor landscape is consolidating around chip-to-facility integration, and that two-phase cooling now has a well-capitalized incumbent behind it. Operators planning multi-generation AI capacity should track both single-phase and two-phase roadmaps rather than assuming today's standard remains fixed."}}, {"@type": "Question", "name": "What key information is missing from the announcement?", "acceptedAnswer": {"@type": "Answer", "text": "The investment amount and terms, named customers or deployed capacity, manufacturing and distribution plans, and any statement on qualification with major AI chip or server platforms. Without these, the announcement establishes strategic direction but not commercial momentum."}}]}]}</script></p>
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