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CFD Investigation of Airflow Management in a Small Container Data Center

机译:小型集装箱数据中心气流管理的CFD调查

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摘要

In this paper, the cooling performance of a small container data center is numerically investigated. It is indicated that adjusting the plenum depth and placing baffles in the plenum can improve the airflow uniformity efficiently. On the other hand, the perforated tiles with low porosity of 25 also can significantly improve the air flowrate distribution by 88.9 with the severe pumping power penalty of 2.79 times. Hence, the layout of perforated tiles with nonuniform porosities is optimized with the fixed average porosity of 50, which can obtain almost absolutely uniform flowrate distribution in the cold aisle. In addition, the cold aisle containment (CAC) strategy is implemented, resulting in the improved rack cooling index (RCI) and supply heat index (SHI) to approach to 100 and 0, respectively. However, the intake flowrates still suffer from nonuniformity due to the bypass effect, thus a novel criterion named flowrate uniformity index (FUI) is proposed. Besides, the drawer-type layouts with the shifting distance ( $delta$ ) varying from 0 to 200 mm are investigated, and the case with $delta = 150$ mm shows the best improvement in terms of the standard deviation of FUI ( $sigma _{mathrm {FUI}}$ ). Moreover, the $sigma _{mathrm {FUI}}$ of the case with a three-layer drawer-type layout can be further improved by 45.8.
机译:本文对小型集装箱数据中心的冷却性能进行了数值研究。结果表明,调节气室深度并在气室中放置挡板可以有效地改善气流的均匀性。另一方面,低孔隙率25的多孔砖也可以显着改善空气流量分布88.9,严重的泵送功率损失为2.79倍。因此,用固定的平均孔隙率50优化了孔隙率不均匀的多孔砖的布局,可以在冷通道中获得几乎绝对均匀的流量分布。此外,实施了冷通道遏制(CAC)策略,从而使机架冷却指数(RCI)和供热指数(SHI)分别提高到接近100和0。然而,由于旁通效应,进气流量仍然存在不均匀性,因此提出了一种新的标准,称为流量均匀性指数(FUI)。此外,研究了移位距离($ delta $)在0到200 mm之间变化的抽屉式布局,在$ delta = 150 $ mm的情况下,就FUI的标准偏差而言,最佳的改进是( $ sigma _ { mathrm {FUI}} $)。而且,具有三层抽屉式布局的情况的$ sigma _ { mathrm {FUI}} $可以进一步提高45.8。

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