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首页> 外文期刊>International Journal of Refrigeration >Performance improvement of the R744 two-phase ejector with an implemented suction nozzle bypass
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Performance improvement of the R744 two-phase ejector with an implemented suction nozzle bypass

机译:采用实施吸入喷嘴旁路的R744两相喷射器的性能改进

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摘要

In this study, the concept of an R744 ejector with a bypass duct of a suction nozzle was presented. The design of the geometry and bypass positioning in a mixing section, and the idea of regulation, as well as integration, with a suction nozzle duct was described. A preliminary numerical analysis of the proposed bypass geometry was also presented. The computational platformejectorPLintegrated with an extensively validated mathematical model of transcritical R744 two-phase flow was used. Motive nozzle inlet and suction nozzle inlet conditions reflecting gas cooler and evaporator conditions characteristic of large systems, such as supermarket refrigeration units, were examined. Three different separation pressures in liquid receivers were assumed for two bypass geometries and six bypass inlet positions. The bypass positioning as a function of a mixer length was presented. Uniquely positive results were obtained for the lowest pressure conditions. Namely, the increment of the suction mass flow rate was substantial and equal to 36.9% for the bypass angle of 19°. Hence, the bypass implementation resulted in distinct potential of an efficiency improvement from 22.2% to 30.4%. A higher pressure lift case did not result in any improvement of the ejector work. The influence of the bypass geometry on the overall ejector efficiency was preliminarily characterised. Finally, the pressure distribution in the bypass type ejector was described.
机译:在该研究中,提出了具有吸嘴的旁路管道的R744喷射器的概念。描述了在混合部分中的几何和旁路定位的设计,以及调节的概念,以及集成,具有吸入喷嘴管道。还提出了提出的旁路几何形状的初步数值分析。使用具有广泛验证的跨临界R744两相流的数学模型的计算平稳化。检查动机喷嘴入口和吸嘴入口,反射气体冷却器和蒸发器条件的蒸发器条件,如超市制冷单元等大型系统的特征。假设液体接收器中的三个不同的分离压力,用于两个旁路几何形状和六个旁路入口位置。提出了作为混合器长度的函数的旁路定位。为最低压力条件获得了唯一的阳性结果。即,对于旁路角度为19°的旁路角度,吸入质量流速的增量基本且等于36.9%。因此,旁路实现导致效率改善的不同潜力从22.2%到30.4%。更高的压力提升盒不会导致喷射器工作的任何改进。突出几何形状对整体喷射器效率的影响是初步的特征。最后,描述了旁路式喷射器中的压力分布。

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