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Computational and Experimental Validation of a Vortex- Superposition-Based Buoyancy Approximation for the COMPACT Code in Data Centers

机译:数据中心COMPACT代码基于涡旋叠加的浮力近似的计算和实验验证

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摘要

A simplified model and GUI package, named COMPACT (Compact Model of Potential Flow and Convective Transport), has been developed in previous years to provide a fast alternative to full computational fluid dynamic (CFD) thermofluidic models for a variety of data center applications. These include, but are not limited to, use as a first-order design tool, a potential improvement to plant-based controllers, and an initial guess for complex CFD solvers. COMPACT applies convective energy transport equations to a computed potential flow field to approximate a flow and temperature field, taking 30 s or less for a commercially available laptop to characterize a 7700 cell room. Previously, the results from this model were compared to experimental measurements taken from a data center at Hewlett-Packard Laboratories (HP Labs) in Palo Alto, CA. High localized temperatures in the model led to the conclusion that recirculation and buoyancy were contributing excessively to error in the model. This paper proposes a method of vortex superposition to account for these effects, in which locations with high temperature in the original model are analyzed and a corrective flow field consisting of Rankine vortices is superimposed on the solution. This approach is tested with further experimental measurements taken from the data center at HP Labs, as well as conventional commercially available CFD. These newer results show a marked decrease in mean deviation of the model from measured temperatures, as well as elimination of the highly localized temperatures which afflicted the original COMPACT results. The vortex superposition model is also "tuned," with vortex strength optimized for multiple test cases at varying levels of recirculation.
机译:前几年开发了一种简化的模型和GUI程序包,称为COMPACT(潜在流动和对流传输的紧凑模型),为各种数据中心应用提供了一种完全计算流体动力学(CFD)热流体模型的快速替代方案。这些包括但不限于用作一阶设计工具,对基于工厂的控制器的潜在改进以及对复杂CFD求解器的初步猜测。 COMPACT将对流能量传输方程式应用于计算出的潜在流场,以近似流场和温度场,对于商用笔记本电脑而言,表征7700电池室需要30 s或更短的时间。以前,此模型的结果与加州帕洛阿尔托市惠普实验室(HP Labs)数据中心的实验测量结果进行了比较。模型中较高的局部温度得出结论,即再循环和浮力对模型中的误差起了过多的作用。为了解决这些影响,本文提出了一种涡旋叠加的方法,在该方法中,分析了原始模型中的高温位置,并将由朗肯涡旋组成的校正流场叠加到了溶液上。通过从HP Labs数据中心以及常规的商用CFD获得的进一步实验测量值对该方法进行了测试。这些更新的结果表明,模型与测量温度的平均偏差显着降低,并且消除了影响原始COMPACT结果的高度局部化的温度。还对涡旋叠加模型进行“调整”,优化了涡旋强度,以适应不同循环水平下的多个测试案例。

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  • 来源
    《Journal of Electronic Packaging》 |2013年第3期|030903.1-030903.8|共8页
  • 作者单位

    Mechanical Engineering Department, University of California, Berkeley, CA 94709;

    Mechanical Engineering Department, University of California, Berkeley, CA 94709;

    Hewlett Packard Laboratories, Palo Alto, CA 94304;

    Hewlett Packard Laboratories, Palo Alto, CA 94304;

    Mechanical Engineering Department, University of California, Berkeley, CA 94709;

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