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CFD-based design and simulation of hydrocarbon ejector for cooling

机译:基于CFD的冷却碳氢喷射器的设计与仿真

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Ejector cooling with hydrocarbon as alternative refrigerant promises great application potential in hot climate regions. In order to unleash the potential of these sustainable cooling systems, it is essential to design high-performance hydrocarbon ejectors. In this paper, a computational fluid dynamic (CFD) simulation approach is proposed for detailed ejector modeling. The NIST real gas model is used to incorporate thermophysical properties of actual refrigerants for accurate ejector performance prediction. A hydrocarbon ejector performance is analyzed according to different operating and geometric conditions, where a linear relationship between the expansion ratio and the compression ratio is obtained for Pentane with an accuracy of 0.5%. A set of Pareto Frontier performance curves are also recommended for designing and operating energy-efficient hydrocarbon ejector cooling systems. Our results show that a small area ratio leads to a high ejector compression ratio, which is desired in hot climate applications. The other geometric design parameters have minor effects on the ejector performance. This work also indicates that ejectors with a converging-area chamber can achieve better overall performance compared to conventional ejectors. (C) 2018 Published by Elsevier Ltd.
机译:用碳氢化合物作为替代制冷剂的喷射器冷却有望在炎热气候地区具有巨大的应用潜力。为了释放这些可持续冷却系统的潜力,设计高性能的烃喷射器至关重要。在本文中,针对详细的喷射器建模,提出了一种计算流体动力学(CFD)仿真方法。 NIST实际气体模型用于合并实际制冷剂的热物理性质,以准确预测喷射器性能。根据不同的操作和几何条件分析了碳氢化合物喷射器的性能,其中戊烷的膨胀率与压缩率之间具有线性关系,精度为0.5%。还建议使用一组Pareto Frontier性能曲线来设计和运行高效的碳氢化合物喷射器冷却系统。我们的结果表明,较小的面积比会导致较高的喷射器压缩比,这在炎热的气候应用中是理想的。其他几何设计参数对喷射器性能影响较小。这项工作还表明,与传统的喷射器相比,具有会聚腔室的喷射器可以实现更好的整体性能。 (C)2018由Elsevier Ltd.发布

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