首页> 外文会议>IEEE Intersociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems >An Optimization Algorithm to Design Compact Plate Heat Exchangers for Waste Heat Recovery Applications in High Power Datacenter Racks
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An Optimization Algorithm to Design Compact Plate Heat Exchangers for Waste Heat Recovery Applications in High Power Datacenter Racks

机译:大功率数据中心机架余热回收应用紧凑型板式换热器的优化算法

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Heat dissipations of servers in datacenter racks are following an ever-increasing trend, breaking the economical heat removal limits of traditional air-based cooling technologies. Currently, an average of 40-45% of the total datacenter energy consumption is needed to cool servers, presenting significant challenges to maintain energy efficiencies and also noise levels within US OSHA standards. The present paper focuses on the determination of the optimal design of a compact plate heat exchanger (PHE), acting as an overhead refrigerant-to-water condenser of a macro-scale thermosyphon, which dissipates the total heat from a datacenter rack into a cooling loop for waste heat recovery applications (e.g. district heating network). PHEs are already the preferred solution for many industrial and domestic applications (especially small to medium size refrigeration and heat pump systems), since they provide higher heat transfer performance, higher flexibility toward the targeted application and lower pressure drops compared to the conventional tube-in-tube and shell-and-tube heat exchangers. Furthermore, due to the numerous variables involved in the design of PHEs, such as plate number, plate footprint size, geometry of the corrugation pattern (i.e. chevron angle, pressing depth, etc.), an optimization analysis and corresponding simulation tool is auspicious to finding the optimal design of these units to accommodate the targeted heat rates of datacenter racks. Hence, this study proposes a novel optimization process which incorporates a local simulator (an improved version compared to the one presented at ITHERM 2018)for accurately rating and designing PHEs over a wide range of operating conditions, plate geometries and working fluids. The improved simulator uses a local one-dimensional effectiveness-NTU approach, with a local implementation of mass, momentum and energy equations, coupled with newly upgraded methods for condensation heat transfer coefficients and frictional pressure drops, as well as newly added prediction methods to handle the inlet and outlet port pressure drops on the overall thermal-hydraulic performance of PHEs. The local simulator is the central function upon which the optimization analysis is performed by employing a genetic algorithm. The latter has been proven to work exceptionally well when dealing with many, highly non-linear functions, such as heat transfer coefficients and pressure drops in two-phase flow. The primary variables which determine the design of the PHE to be optimized are subject to several constraints. The objective functions chosen for this optimization analysis are the total heat rate and pressure drop on the condensing side of the macroscale rack thermosyphon. While the former is to be maximized, the latter is to be minimized in order to achieve a highperformance index (defined as the ratio of the heat rate over the pressure drop).
机译:数据中心机架中服务器的散热量呈不断增长的趋势,突破了传统的基于空气的冷却技术的经济散热限制。当前,冷却服务器所需的平均数据中心能耗平均为40-45%,这对于维持能源效率以及美国OSHA标准内的噪声水平提出了重大挑战。本文着重于确定紧凑型板式热交换器(PHE)的最佳设计,该板式热交换器用作大型热虹吸管的塔顶制冷剂-水冷凝器,该冷凝器将来自数据中心机架的总热量散发到冷却装置中废热回收应用(例如区域供热网络)的回路。与传统的管装式相比,PHE已经成为许多工业和家庭应用(尤其是中小型制冷和热泵系统)的首选解决方案,因为它们提供更高的传热性能,针对目标应用的更高灵活性以及更低的压降。管和壳管式热交换器。此外,由于PHE的设计涉及许多变量,例如板数,板足迹尺寸,波纹图案的几何形状(即人字形角度,压制深度等),因此优化分析和相应的仿真工具对于找到这些单元的最佳设计,以适应数据中心机架的目标发热量。因此,这项研究提出了一种新颖的优化过程,该过程结合了本地仿真器(与ITHERM 2018展示的仿真器相比有所改进),可以在各种工作条件,板几何形状和工作流体范围内准确地对PHE进行评级和设计。改进的模拟器使用局部一维有效性-NTU方法,在局部实现质量,动量和能量方程,并结合了冷凝水传热系数和摩擦压降的最新升级方法以及新添加的预测方法来处理入口和出口压力下降会影响PHE的整体热工液压性能。本地模拟器是通过使用遗传算法执行优化分析的核心功能。事实证明,后者在处理许多高度非线性的函数(例如,热传递系数和两相流中的压降)时表现出色。决定要优化的PHE的设计的主要变量受到多个约束。为此优化分析选择的目标函数是在大型机架热虹吸管冷凝侧的总热量和压降。前者要最大化,而后者则要最小化,以实现高性能指标(定义为加热速率与压降之比)。

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