Numerical study of a CO2 swirl ejector with lubricating oil

IF 3.5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Chengzhang Li , Fang Liu , Maogang He , Yue Liu
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Abstract

At present, most simulations of ejectors ignore the presence of lubricating oil, which may affect the accuracy of the results. Additionally, there has been less research conducted on the influence of motive nozzles with swirl generators on the performance of ejectors. In this study, a heterogeneous mixture model was developed for a three-phase swirl ejector equipped with a motive nozzle featuring a swirl generator. This article examines the performance of swirl ejectors under supercritical conditions using three-dimensional numerical simulations conducted in ANSYS. The study explores swirl ejectors with varying helical angles of 77°, 64°, 58°, 50°, 37° . The study also takes into account the influence of lubricating oil to enhance the practicality of the research. Firstly, lubricating oil with a volume fraction of 2 % was introduced into both the motive and suction streams, followed by conducting an ejection analysis. The results indicate that the swirl enhances the entrainment ratio, and the swirl strength can be modified by changing the helical angle. A smaller helical angle results in greater swirl strength and a higher entrainment ratio. When the helical angle is 37° and the helical pitch is 20 mm, a swirl number of 0.42, an entrainment ratio of 0.998, and an effective entrainment ratio of 0.863 is achieved. However, when the oil circulation ratio in the suction stream is increased from 2 % to 10 % while keeping the oil circulation ratio of the motive stream constant, the entrainment ratio decreases.

使用润滑油的二氧化碳漩涡喷射器的数值研究Etude numérique d'un éjecteur tourbillonnant de CO2 avec huile lubrifiante
目前,大多数喷射器模拟都忽略了润滑油的存在,这可能会影响结果的准确性。此外,关于带漩涡发生器的动机喷嘴对喷射器性能影响的研究也较少。在本研究中,针对配备了带漩涡发生器的动机喷嘴的三相漩涡喷射器开发了一个异质混合物模型。本文使用 ANSYS 进行三维数值模拟,研究了超临界条件下漩涡喷射器的性能。研究探讨了不同螺旋角(77°、64°、58°、50°、37°)的漩涡喷射器。研究还考虑了润滑油的影响,以增强研究的实用性。首先,将体积分数为 2% 的润滑油引入动力流和吸入流,然后进行喷射分析。结果表明,漩涡可提高夹带率,漩涡强度可通过改变螺旋角来改变。螺旋角越小,漩涡强度越大,夹带率越高。当螺旋角为 37°,螺旋间距为 20 毫米时,漩涡数为 0.42,夹带率为 0.998,有效夹带率为 0.863。然而,当吸入流中的油循环比从 2 % 增加到 10 %,而动力流的油循环比保持不变时,夹带率会下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.30
自引率
12.80%
发文量
363
审稿时长
3.7 months
期刊介绍: The International Journal of Refrigeration is published for the International Institute of Refrigeration (IIR) by Elsevier. It is essential reading for all those wishing to keep abreast of research and industrial news in refrigeration, air conditioning and associated fields. This is particularly important in these times of rapid introduction of alternative refrigerants and the emergence of new technology. The journal has published special issues on alternative refrigerants and novel topics in the field of boiling, condensation, heat pumps, food refrigeration, carbon dioxide, ammonia, hydrocarbons, magnetic refrigeration at room temperature, sorptive cooling, phase change materials and slurries, ejector technology, compressors, and solar cooling. As well as original research papers the International Journal of Refrigeration also includes review articles, papers presented at IIR conferences, short reports and letters describing preliminary results and experimental details, and letters to the Editor on recent areas of discussion and controversy. Other features include forthcoming events, conference reports and book reviews. Papers are published in either English or French with the IIR news section in both languages.
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