基于计算流体动力学的气冷数据中心诱导CRAH旁路研究

H. Erden
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引用次数: 1

摘要

先前的研究调查了计算机室空气处理(CRAH)单元旁路配置的能源影响,并表明封闭通道数据中心具有显著的节能潜力。这些结果是基于数据中心在房间和冷却基础设施层面的热力学建模,以及在房间层面的气流网络建模(FNM)。封闭通道数据中心的封闭结构允许FNM工具在预测这些配置中的关键气流速率和风扇功率使用方面具有良好的性能。然而,任何用于评估具有CRAH旁路配置的风冷数据中心冷却能耗的热力学建模工具都需要有关于服务器之间不均匀温度分布的更详细的定量信息,以确保没有一台服务器超过持续运行的推荐温度限制。此外,FNM无法解决开放通道数据中心中复杂的气流模式,在开放通道数据中心中,一些热空气会再循环回冷通道,而冷通道中的一些冷空气会绕过机架并泄漏到室内。我们需要更复杂的工具,如计算流体动力学(CFD)来捕捉机架表面的温度不均匀性;这样,能源模拟工具就可以利用这些信息来评估CRAH旁路配置的可行性,主要是作为气冷数据中心的节能改造。在这里,我们进行了一系列CFD模拟,以提取有关在CRAH旁路分数范围内运行的1 MW IT负载的特定数据中心布局的流动模式和温度不均匀性的关键信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of induced CRAH bypass for air-cooled data centers using computational fluid dynamics
Previous studies investigated energy implications of computer room air handling (CRAH) unit bypass configuration and indicated significant energy saving potential for enclosed aisle data centers. These results were based on the thermodynamic modeling of the data center both at the room and cooling infrastructure levels coupled with the air flow network modeling (FNM) at room level. The contained structure of the enclosed aisle data centers allows FNM tools to have decent performance in predicting key air flow rates and fan power use in these configurations. However, any thermodynamic modeling tool to assess cooling energy consumption by the air-cooled data centers with CRAH bypass configuration needs to have more detailed quantitative information about the non-uniform temperature distribution among servers to ensure that none of the servers exceed recommended temperature limits for continuous operation. Furthermore, FNM cannot resolve complex air flow patterns in open aisle data centers, where some of the hot air recirculates back into the cold aisle and some of the cold air in the cold aisle bypasses racks and leaks into the room. We need more sophisticated tools such as computational fluid dynamics (CFD) to capture temperature non-uniformities at the rack surface; so that energy simulation tools utilize this information to assess the feasibility of CRAH bypass configuration primarily as an energy saving retrofit for air-cooled data centers. Here, we conduct a series of CFD simulations to extract critical information about the flow pattern and temperature non-uniformities of a specific data center layout with 1 MW IT load operating within a range of CRAH bypass fractions.
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