封闭通道数据中心CRAH旁路的能量评估

H. Erden, M. Yildirim, M. Koz, H. Khalifa
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引用次数: 8

摘要

传统数据中心的温度不均匀性可以通过使用密封系统来消除或至少减少。由于所有服务器在一个封闭的配置中接受相同的进气温度,冷却系统可以在更高的温度下更有效地运行,这也增加了通过各种省煤器模式进行自由冷却的潜力。然而,封闭通道配置需要计算机室空气处理器(CRAH)风扇以更高的速度运行,并通过穿孔瓷砖提供整个机架气流,这与开放通道数据中心不同,开放通道数据中心可以从数据中心空气空间中获取一小部分服务器空气。因此,传统的封闭通道配置可能会消耗更多的风扇功率。该研究证实,封闭通道并不能保证风冷数据中心的最佳冷却基础设施功率。建议的CRAH旁路配置用于封闭通道数据中心,当CRAH风扇以较低的速度运行时,通过一组旁路风扇提供一小部分的气流速率。这些低扬程风机在房间和静压室之间的压力差中运行,这明显小于CRAH机组的流动阻力。同时,CRAH风扇运行速度更低,能耗更低。因此,相对于机架总气流率的一定旁通空气分数导致特定配置的最小冷却基础设施功率。本研究调查了采用CRAH旁路配置的封闭通道数据中心的节能潜力,利用校准的流动网络模型来估计空气推手的能耗,以及热力学建模工具来评估数据中心冷却基础设施主要组件的非设计性能。每小时的年度能源模拟补充了考虑间接空气侧省煤器运行的7个美国城市的能源评估。
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Energy assessment of CRAH bypass for enclosed aisle data centers
Temperature non-uniformities in traditional data centers can be eliminated or at least reduced by utilizing containment systems. As all servers receive the same inlet air temperature in a contained configuration, the cooling system can be operated more efficiently at a higher temperature, which also increases the potential for free cooling through various economizer modes. However, enclosed aisle configurations require computer room air handler (CRAH) fans to operate at a higher speed and provide entire rack air flow through the perforated tiles, unlike open aisle data centers that can make up a fraction of server air from the data center air space. Hence, the traditional enclosed aisle configuration is likely to consume more fan power. This study confirms that enclosing the aisle does not guarantee optimum cooling infrastructure power in air cooled data centers. Proposed CRAH bypass configuration for enclosed aisle data centers provides a fraction of the tile airflow rate through a set of bypass fans while CRAH fans operate at lower speeds. These low-lift fans operate across a pressure difference between the room and plenum, which is significantly less than the flow resistance of CRAH units. Meanwhile, CRAH fans operate at lower speeds and consume less energy. Accordingly, a certain bypass air fraction with respect to total rack air flow rate leads to a minimum cooling infrastructure power for a particular configuration. This study investigates energy savings potential of the enclosed aisle data centers with CRAH bypass configuration utilizing a calibrated flow network model for estimating the energy consumption of air movers as well as a thermodynamic modeling tool to evaluate the off-design performance of major components of data center cooling infrastructure. Hour-by-hour annual energy simulations complement the energy assessment for 7 U.S. cities considering indirect air side economizer operation.
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