家电科技 ›› 2025, Vol. 0 ›› Issue (zk): 223-227.doi: 10.19784/j.cnki.issn1672-0172.2025.99.046

• 第二部分 制冷与空调 • 上一篇    下一篇

往复式压缩机不同吸气结构对流体性能影响研究

周展民1, 张加挺1, 洪嘉华1, 谭书鹏1, 张辉1, 张巍2   

  1. 1.广东美芝制冷设备有限公司 广东佛山 528333;
    2.安徽美芝制冷设备有限公司 安徽合肥 230088
  • 发布日期:2025-12-30
  • 作者简介:周展民,硕士学位,毕业于华中科技大学动力工程及工程热物理专业,固体研究工程师。研究方向:事压缩机流体控制、多相流仿真。E-mail:zhouzm59@midea.com。

Investigation into the fluid performance of reciprocating compressors with different suction designs

ZHOU Zhanmin1, ZHANG Jiating1, HONG Jiahua1, TAN Shupeng1, ZHANG Hui1, ZHANG Wei2   

  1. 1. Guangdong Meizhi Compressor Co., Ltd. Foshan 528333;
    2. Anhui Meizhi Compressor Co., Ltd. Hefei 230088
  • Published:2025-12-30

摘要: 冰箱往复式压缩机的吸气和排气过程的性能很大程度上取决于阀片的运动方式,传统的分析方法是一般假设吸气口处为均匀流动。然而,对于吸气过程,吸气阀片的几何形状会有不同的阀口流动瞬时形态,不同的流动形态的吸气损失存在很大差异,进而影响压缩机性能。通过应用流固耦合(FSI)模型与实验验证,研究往复式压缩机吸入过程中阀组吸气结构对阀片运动及流体性能的影响,结果表明,通过合理设计吸气口和阀片的形状可以有效提高吸气量,减少流动损失及延迟关闭带来的吸气回流,性能测试结果较原方案有较大提升,两种吸气结构优化方案比传统方案高频制冷量分别提升9.9%和8.5%,低频COP分别提升了2.2%和3.1%。

关键词: 往复式压缩机, 吸气结构设计, 流固耦合, 实验研究

Abstract: The performance of the suction and discharge processes in a refrigerator reciprocating compressor is largely determined by the movement pattern of the valve plate. Traditional analytical methods generally assume uniform flow at the suction port. However, during the suction process, the geometry of the suction valve plate results in varying instantaneous flow patterns at the valve port. Different flow patterns lead to significant differences in suction losses, thereby affecting compressor performance. By applying the fluid-structure interaction (FSI) model validated through experimental studies, the influence of the suction valve assembly structure on valve plate movement and fluid performance during the compressor’s suction process was investigated. The results demonstrate that optimizing the design of the suction port and valve plate shape can effectively increase suction volume, reduce flow losses, and minimize backflow caused by delayed closure. Performance test results show significant improvements compared to the original design. The two optimized suction structure schemes achieve high-frequency cooling capacity increases of 9.9% and 8.5%, respectively, and low-frequency COP improvements of 2.2% and 3.1% over the conventional solution.

Key words: Reciprocating compressor, Suction structure design, FSI, Experimental study

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