吸力消声器出口管道几何形状对容积效率和COP影响的实验与数值研究

IF 3.5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Caglar Sahin , Seyhan Uygur Onbasioglu
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引用次数: 0

摘要

本文采用实验和数值方法研究了消声器出口管道设计和压缩机转速对消声器容积效率和COP的影响。三种不同的消声器出口管道设计,其特点是不同的长度和直径,使用R600a制冷剂在四种不同的压缩机速度下进行测试。实验测量包括通过应变片获得吸入阀的位移数据,同时使用压力传感器记录吸入静压室和气缸体积的压力波动。此外,采用磁性编码器监测曲柄角度和气缸体积。利用GT-SUITE™平台建立了数值模型,并随后根据实验结果进行了验证。在验证成功后,利用数值模型更深入地研究了压气机转速和消声器几何形状的影响。调查包括分析压降、压缩机速度和气门正时与质量流量和气门位移曲线的关系。建立了一个一般的线性模型来量化每个参数的贡献,R-sq(调整后)为75%。该模型表明,压缩机转速对容积效率变化的影响占75%,管道直径是第二大影响因素,占近22%,管道长度的影响为3%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and numerical investigation of suction muffler outlet pipe geometry effect on volumetric efficiency and COP
This study investigates how the design of the muffler outlet pipe and the compressor speed affect the volumetric efficiency and COP using both experimental and numerical methods. Three distinct muffler outlet pipe designs, characterized by varying lengths and diameters, are tested across four different compressor speeds using R600a refrigerant. Experimental measurements include displacement data of the suction valve obtained via strain gauges, while pressure fluctuations in the suction plenum and cylinder volume are recorded using pressure transducers. Additionally, a magnetic encoder is employed to monitor crank angle and cylinder volume. A numerical model is developed using the GT-SUITE™ platform and subsequently validated against the experimental results. After successful validation, the numerical model is used to investigate the impacts of compressor speed and muffler geometry in more depth. The investigation encompasses the analysis of pressure drop, compressor speed, and valve timing in relation to mass flow rate and valve displacement curves. A general linear model is constructed to quantify the contribution of each parameter and the R-sq (adjusted) is 75 %. The model indicates that compressor speed accounts for 75 % of the variation in volumetric efficiency whereas the pipe diameter is the second-largest contributor, accounting for nearly 22 % and the effects of the pipe length is 3 %.
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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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