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Impact of Overhead Air Supply Layout on the Thermal Performance of a Container Data Center

机译:空中供气布局对集装箱数据中心热性能的影响

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This study focused on the improved designs of airflow management in container data centers having overhead air supply. The computational fluid dynamics (CFD) model is first validated with experimental results. Then, the impact of grille diameter, deflector angle, and air supply layout on the data center thermal performance is investigated. The results show that the larger grille diameter may reduce the volumetric flowrate through the upstream grille, causing insufficient air supply and strong hot-air recirculation at the first rack Al. By decreasing the grille diameter from 335 mm to 235 mm, the average rack cooling index (RCI) and supply heat index (SHI) can be improved from 25.4% and 0.292 to 65% and 0.258, respectively. However, implementing small diameter grilles is not an economic way for data center performance improvement as far as the energy consumption is concerned due to the high pumping power. Meanwhile, raising the deflector angle below 30 deg in grille S1 can provide moderate improvement on temperature of the Al rack. A further rise in the deflector to 40 deg may impose severe deterioration with a pronounced hot-spot area. The data center performance can be improved by changing from center-cold-aisle arrangement to center-hot-aisle layout. The layout provides much higher return air temperature and the RCI and SHI can be improved by 32.7% and 34.5%, respectively.
机译:这项研究的重点是具有顶空供气的集装箱数据中心中气流管理的改进设计。首先用实验结果验证了计算流体动力学(CFD)模型。然后,研究了格栅直径,导流板角度和供气布局对数据中心热性能的影响。结果表明,较大的格栅直径可减小通过上游格栅的体积流量,从而导致第一框架A1处的空气供应不足和强烈的热空气再循环。通过将格栅直径从335毫米减小到235毫米,平均机架冷却指数(RCI)和供热指数(SHI)可以分别从25.4%和0.292提高到65%和0.258。但是,就小功率格栅而言,由于泵浦功率高,从能耗角度考虑,采用小直径格栅并不是提高数据中心性能的经济方法。同时,将格栅S1中的偏转器角度提高到30度以下可以适当地改善Al齿条的温度。导流板进一步上升到40度可能会导致严重的劣化,并出现明显的热点区域。从中心冷通道布局更改为中心热通道布局可以提高数据中心的性能。该布局可提供更高的回风温度,RCI和SHI分别可提高32.7%和34.5%。

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