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The optimal thermal management study of a next-generation data center

机译:下一代数据中心的最佳热管理研究

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This study adopts the computational fluid dynamics software? ANSYS FLUENT to predict the airflow and temperature distribution in a next-generation overhead downward flow (ODF)-type data center (DC). The study’s primary objective is to minimize the entropy generation rate of the heat exchanger (HX) used in the ODF system in order to achieve energy savings. The ANSYS DesignXplorer optimization tool is employed to find the optimal design point with the smallest entropy generation rate of the HX. The predicted total exergy destruction of the DC at the optimal design point shows that the proposed A1-grade DC defined by ASHRAE TC 9.9 can save energy effectively. Moreover, the predicted power usage effectiveness (PUE) is lower than the average PUE reported in 2020 and all of the thermal performance metrics fall within the range of ideal conditions. The numerical results show that two approaches can effectively save energy in the ODF-type DC: one is to suitably increase the air-supply temperature;and the other is to suitably increase the temperature difference between the air-supply and return ports. Moreover, the separation of cold and hot aisles can effectively avoid the mixing of cold and hot airflows, resulting in an insignificant exergy destruction in the airspace.
机译:本研究采用计算流体动力学软件? ANSYS流畅,以预测下一代开销下流(ODF)型数据中心(DC)中的气流和温度分布。该研究的主要目的是最小化ODF系统中使用的热交换器(HX)的熵产生率,以实现节能。 ANSYS DesignXplorer优化工具用于找到具有HX的最小熵生成率的最佳设计点。最佳设计点的DC预测的总漏洞销毁表明,所提出的ASHRAE TC 9.9定义的A1级DC可以有效地节省能量。此外,预测的电力使用有效性(PUE)低于2020年报告的平均型趋势,并且所有热性能度量都属于理想条件的范围内。数值结果表明,两种方法可以有效地节省ODF型DC中的能量:一个是适当地增加空气供应温度;另一个是适当地增加空气供应和返回端口之间的温差。此外,冷热通道的分离可以有效地避免冷热气流的混合,导致空域的微不足道的破坏。

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