电动汽车用涡旋压气机不同螺旋回转配置的喷射性能分析:实验方法

IF 3.8 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Kang Li , Zhaotiannuo Tan , Soheil Mohtaram , Yafen Tian , Ni Liu , Hua Zhang , Jinjun Yan , Qize He , Chao Li , Tao Yang
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引用次数: 0

摘要

本研究介绍了一种提高电动汽车热泵系统涡旋压缩机性能的新方法,特别是在低温条件下。尽管涡旋压缩机在电动汽车加热系统中起着至关重要的作用,但在寒冷的气候下,涡旋压缩机的效率往往会降低。为了解决这一问题,研究了蒸汽喷射技术与涡旋压缩机几何结构优化的结合。设计和分析了8种不同螺旋匝数和喷射口位置的创新压缩机配置。建立了一种新的压缩机运行周期理论模型,实现了不同工况下压缩机性能的精确模拟。研究表明,增加螺旋转数可以提高产热,但降低了性能系数(COP),而蒸汽喷射技术与非喷射设计相比,加热性能提高了2.4%至4.9%。为了进一步探索设计修改的影响,进行了三维模拟,分析了不同喷射口位置的温度和压力分布,结果表明,三螺旋转(N = 3.0)的压缩机内部温度更高,可能导致排气口附近的局部高温积累。通过实验验证了理论模型的准确性,为压缩机设计提供了实用的见解。研究结果建立了一个最佳的螺旋匝数范围(N = 2.2至N = 2.6),以最大限度地提高加热效率。这项研究为电动汽车热泵系统的高效低温涡旋压缩机的开发做出了重要贡献,为提高寒冷气候应用中的能效和性能提供了创新的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Injection performance analysis of scroll compressors with varying spiral turn configurations for electric vehicle applications: An experimental approach
This study introduces a novel approach to enhancing the performance of scroll compressors in electric vehicle (EV) heat pump systems, particularly under low-temperature conditions. Despite their critical role in EV heating systems, scroll compressors often experience reduced efficiency in cold climates. To address this issue, the research investigates the integration of vapor injection technology and the optimization of scroll compressor geometry. Eight innovative compressor configurations, varying in spiral turns count and injection port placement, are designed and analyzed. A new theoretical model of the compressor's operating cycle is developed, enabling precise simulations of performance under different conditions. The study demonstrates that increasing the number of spiral turns enhances heat generation but reduces the coefficient of performance (COP), while vapor injection technology improves heating performance by 2.4 % to 4.9 % compared to non-injection designs. To further explore the effects of design modifications, three-dimensional simulations are conducted to analyze temperature and pressure distributions at various injection port locations, revealing that compressors with three spiral turns (N = 3.0) exhibit higher internal temperatures, potentially leading to localized high-temperature accumulation near the discharge port. The theoretical model is rigorously validated through experimental testing, confirming its accuracy and providing practical insights for compressor design. The findings establish an optimal spiral turns range (N = 2.2 to N = 2.6) for maximizing heating efficiency. This research significantly contributes to the development of high-efficiency, low-temperature scroll compressors for EV heat pump systems, offering innovative solutions to enhance energy efficiency and performance in cold-climate applications.
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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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