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SIMULATION AND VALIDATION OF A TWO-PHASE PUMPED LOOP COOLING SYSTEM

机译:两相泵循环冷却系统的仿真与验证

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Two-phase refrigerant pumped loop cooling systems have seen wider use in recent years because of higher power density electronics and the need for increased heat transfer capability. However, two-phase systems are difficult to model because they operate in a closed-loop and both liquid and vapor phases exist and change with time throughout the system. A two-phase "test-bed" system was constructed in order to explore the various operating regimes and limitations of this technology. Additionally, physical results from this test-bed were used to determine if the system performance could be accurately modeled using a commercially available software package such as SINDA/FLUINT. The refrigerant circuit uses R134a as the cooling fluid that is pumped around a complete loop using a positive displacement pump. Heat is added at the evaporator using ceramic heaters on the outside of the housing that boils the fluid, resulting in a liquid/vapor mix in the transport tube. Heat is removed at the condenser which is a commercial flat plate heat exchanger that uses building water for cooling. A closed-loop fluid-thermal model of the test-bed was created in Thermal Desktop®, which is the pre and post-processor for the SINDA/FLUINT analyzer, and compared to several tests conducted on the physical system at varying heat loads. The model successfully predicted the system performance after adjustments to the model for refrigerant mass charge and condenser performance. The maximum difference between the measured evaporator temperature and the modeled temperature was only 6.1 ℉; which occurred at the highest heat input level (1400 Watts). Explanations for differences between model and test results will be discussed. In particular, modeled system temperatures were found to have a very non-linear sensitivity to the total refrigerant mass charge.
机译:近年来,由于功率密度更高的电子设备和对提高热传递能力的需求,两相制冷剂泵送循环冷却系统得到了广泛的应用。但是,两相系统很难建模,因为它们在闭环中运行,整个系统中液相和气相都存在并随时间变化。为了探索该技术的各种运行方式和局限性,构建了一个两阶段的“测试台”系统。此外,使用该试验台的物理结果来确定是否可以使用诸如SINDA / FLUINT之类的商业软件包来准确地对系统性能进行建模。制冷剂回路使用R134a作为冷却液,使用正排量泵将其泵入整个回路。使用外壳外部的陶瓷加热器在蒸发器上加热,使液体沸腾,从而在输送管中形成液体/蒸汽混合物。冷凝器是商业平板热交换器,它使用建筑用水进行冷却,从而将热量排出。在ThermalDesktop®中创建了试验台的闭环流体热模型,该模型是SINDA / FLUINT分析仪的预处理器和后处理器,并与在不同热负荷下在物理系统上进行的多项测试进行了比较。调整制冷剂充量和冷凝器性能模型后,该模型成功预测了系统性能。测得的蒸发器温度与模型温度之间的最大差仅为6.1℉;发生在最高热量输入水平(1400瓦)。将讨论模型和测试结果之间差异的说明。特别地,发现建模的系统温度对制冷剂总充注量具有非常非线性的敏感性。

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