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Hybrid Two-Phase Cooling Technology For Next-Generation Servers: Thermal Performance Analysis

机译:用于下一代服务器的混合两相冷却技术:热性能分析

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This paper advances the work presented at ITHERM 2020 where a novel passive two-phase technology was introduced for more efficient cooling of datacenters compared to air-based cooling solutions (e.g. In-Room, In-Row, etc.). The proposed hybrid two-phase cooling technology uses passive low-height thermosyphons to dissipate the heat generated by high power components inside the servers. The heat is then transferred to multiple rack-level thermosyphons, equipped with one or more overhead compact condensers, which in turn dissipate the total heat from the rack into a room-level water-based or air-based cooling loop. Air-cooling is still used for the low heat-generating components (e.g. memory units, secondary chips, etc.) to make the cooling technology cost effective.This study is focused on a thermal performance analysis of the hybrid two-phase cooling technology applied to a single server (2U HP ProLiant DL180 G6), where low-height thermosyphons are installed to cool the two CPUs, and the remaining server components are cooled via air in forced convection using server-level fans. The thermal performance of the low-height thermosyphons is extracted from previous experimental measurements carried out at Nokia Bell Labs and presented at ITHERM 2020. Additional measurements considering the effect of the refrigerant charge on the thermal resistance and associated chip case temperature are conducted. The air-cooling performance and flow distribution are investigated via CFD simulations performed in COMSOL that characterize the conjugate heat transfer between server components and cooling air. The experimental and numerical results presented here show that, at the maximum server IT load of 587 W, the hybrid two-phase technology ensures sufficient cooling for all the hardware components while significantly reducing the energy consumption of the fans. Specifically, the fan contribution is reduced from 24% (traditional air-cooling) to about 2% of the server effective IT load (hybrid two-phase cooling), demonstrating the potential of the proposed technology to scale existing hardware and build next-generation datacenters, while keeping low costs and being environmentally-friendly.
机译:本文推进了在Itherm 2020上提出的作品,其中引入了一种新的被动两相技术,以便与空气的冷却溶液相比,用于更有效地冷却数据中心(例如,在室内,连续等)。所提出的混合动力两相冷却技术采用被动低高度的热旋转孔,以消散在服务器内部的高功率部件产生的热量。然后将热量转移到多个机架水平的热悬浮液中,配备有一个或多个架空紧凑型冷凝器,其依次将来自架子的总热量耗散到房间水平的水基或空气基冷却回路中。空气冷却仍然用于低发热部件(例如存储器单元,二次芯片等),以使冷却技术成本效益。本研究专注于施加的混合动力两相冷却技术的热性能分析对于单个服务器(2U HP ProLiant DL180 G6),其中安装了低高度热旋子以冷却两个CPU,并且使用服务器级风扇通过强制对流中的空气冷却剩余的服务器组件。从诺基亚钟实验室的先前进行的实验测量中提取低高度热悬浮菌药的热性能,并在术中呈现。考虑到制冷剂电荷对热阻和相关芯片壳体温度的额外测量。通过在COMSOL中进行的CFD模拟研究了空气冷却性能和流量分布,该CFD模拟表征了服务器组件和冷却空气之间的共轭热传递。这里提出的实验性和数值结果表明,在最大服务器上,在587W的最大服务器中,混合式两相技术确保所有硬件组件的足够冷却,同时显着降低了风扇的能量消耗。具体而言,风扇贡献从24%(传统的空气冷却)减少到约2%的服务器有效IT负载(混合两相冷却),展示所提出的技术的潜力来规模现有硬件并建立下一代数据中心,同时保持低成本并环境友好。

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