计算机服务器的空气-水混合冷却:最佳冷却能量分配的案例研究

Xiaojin Wei, G. Goth, P. Kelly, R. Zoodsma, A. VanDeventer
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引用次数: 3

摘要

空气-水混合冷却为具有不同热管理需求的组件的计算机系统提供了灵活的设计选择。一方面,水冷却使得CPU性能不断提升,封装密度不断提高。高性能冷板,如微通道,已经成功地在以前的高端系统中实施水冷却。当与空气-水热交换器或散热器相结合时,水环路成为一个封闭的环路,不需要设施冷冻水。这大大降低了在数据中心部署服务器的复杂性。另一方面,对于热需求较少的部件,传统的风冷技术具有低成本、高可用性和更好的可维护性。对于整个计算机系统,可以对空气-水混合冷却系统进行优化。这种混合系统通常需要泵来驱动水循环,空气搅拌器来驱动空气通过散热器,鼓风机或风扇来驱动空气流动以冷却部件。本文的重点是研究在一定的总冷却能量预算和总负荷下,泵和气泵之间的最佳能量分配。目标是实现更好的整体热性能,并减少冷却能耗。为此,根据试验数据建立了各冷却块的模型。这些包括空气-水热交换器、泵、鼓风机和冷板。这些模型连接在一起,以预测不同应用场景下的整体热系统工作点。然后进行参数化研究,以确定满足热设计目标的这些场景的近最佳冷却能量分配。此外,考虑到CPU的亚阈值泄漏以增强模型,因为温度提供正反馈。通过建模表明,在给定的总能量预算下,通过明智地分配冷却能量,可以实现额外的性能增强。本文认为,通过数据驱动的智能能源分配,可以显著提高整体能源效率。
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Air-water hybrid cooling for computer servers: A case study for optimum cooling energy allocation
Air-water hybrid cooling offers flexible design choices for computer systems with components of different thermal management needs. On one hand, water cooling enables the continuous growth of CPU performance and increasing packaging density. High performance cold plates such as microchannels have been successfully implemented for water cooling in previous high-end systems. When coupled with an air-water heat exchanger or radiator, the water loop becomes a closed one with no need for facility chilled water. This significantly reduces the complexity to deploy the server in the data center. On the other hand, for components with less thermal demand, traditional air-cooling technology is adequate with low cost, high availability and better serviceability. For the computer system as a whole, an air-water hybrid cooling system may be optimized. Such a hybrid system typically requires pumps to drive the water loops, air-movers to drive air through the radiator and blowers or fans to drive the air flow for component cooling. It is the focus of this paper to study the optimum allocation of energy between the pumps and air-movers for a given total cooling energy budget and overall load. The goals are to achieve better overall thermal performance and to reduce the cooling energy consumption. To this end models for each cooling block are established based on test data. These include the air-water heat exchanger, pumps, blowers, and cold plates. These models are linked together to predict the overall thermal system operating points for different application scenarios. A parametric study is then conducted to define the near optimum allocation of cooling energy for these scenarios that meets the thermal design objectives. Additionally, sub-threshold leakage for the CPU is taken into account to enhance the model since temperature provides positive feedback. It is shown through modeling that additional performance enhancement is possible with judicious allocation of cooling energy for a given overall energy budget. It is argued in this paper that overall energy efficiency can be improved significantly through intelligent data driven energy allocation.
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