THE ANALYSIS OF LEAKAGE IN A TWIN-SCREW COMPRESSOR AND ITS APPLICATION TO PERFORMANCE IMPROVEMENT

被引:47
|
作者
FLEMING, JS
TANG, Y
机构
[1] Division of Dynamics and Control, Department of Mechanical Engineering, University of Strathclyde, Glasgow, Scotland
关键词
TWIN SCREW COMPRESSOR; GAS LEAKAGE; THERMOFLUID; LEAKAGE PATHS; THERMODYNAMIC MODEL;
D O I
10.1243/PIME_PROC_1995_209_239_02
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The performance of a helical screw compressor is influenced more by the internal gas leakages than by any other thermo-fluid aspect of its behaviour. Six separate types of leakage path can be identified. Only the cusp blow holes have a constant geometry; every other path has a geometry and resistance to flow which varies (periodically) in a manner unique to it. The pressure difference driving the gas along a leakage path also varies (periodically) and does so in a manner that is not the same for every leakage path. This is quite obviously a complex problem requiring insight in modelling the thermo-fluid behaviour and the solution of a large number of simultaneous equations. The distribution of leakage through the various leakage paths within the machine is important for the improvement of the compressor performance. A method of determining the aggregate leakage through each path individually over a complete compression cycle is required to enable this study to be conducted. The authors have constructed a mathematical model of the complete compressor thermofluid process which is suitable for this purpose, its macropredictions having been verified against measured data derived from a test compressor. The nature of its micropredictions and their verification, that is for each leakage path, me the subject of the paper proposed here. Analytical techniques are proposed and experimental methods are discussed. The influence of different rotational speeds on the leakage is considered. Also discussed is the manner in which the leakage distribution prediction could be used to optimize a compressor design.
引用
收藏
页码:125 / 136
页数:12
相关论文
共 50 条
  • [41] Optimization and characteristic analysis of screw rotor of a twin-screw pump
    Tian, Zhi Yong
    Zhao, Yong Qiang
    Li, Zhe Hui
    Liu, Shi
    Wang, Da Hai
    JOURNAL OF VIBROENGINEERING, 2023, 25 (01) : 171 - 188
  • [42] Failure analysis of a twin-screw pump shaft
    Xu, Shugen
    Zhang, Yuan
    Wang, Chong
    Sun, Zhiwei
    Wang, Shengkun
    Zhao, Yanling
    PROCESS SAFETY PROGRESS, 2018, 37 (01) : 95 - 103
  • [43] ECONOMIC-APPLICATION OF TWIN-SCREW EXTRUDERS IN RECYCLING
    WIEDMANN, W
    WOHLFAHRTLAYMANN, H
    KUNSTSTOFFE-GERMAN PLASTICS, 1992, 82 (10): : 934 - 938
  • [44] ANALYSIS OF DEVELOPING MODELS FOR TWIN-SCREW EXTRUDERS
    POLTERSDORF, B
    BERGMANN, J
    PLASTE UND KAUTSCHUK, 1981, 28 (09): : 516 - 520
  • [45] Development and experimental study of a high-efficiency helium twin-screw compressor
    Wang, Chuang
    Xing, Ziwen
    Sun, Shizhong
    Yu, Zhiqiang
    CRYOGENICS, 2021, 116 (116)
  • [46] Thermodynamic performance simulation of a twin-screw multiphase pump
    Feng, C
    Yueyuan, P
    Ziwen, X
    Pengcheng, S
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART E-JOURNAL OF PROCESS MECHANICAL ENGINEERING, 2001, 215 (E2) : 157 - 163
  • [47] Profile Design Method of Twin-Screw Compressor Rotors Based on the Pixel Solution
    Shen, Zhihuang
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2020, 2020
  • [48] Development of an oil free water-lubricated twin-screw air compressor
    Wang, Chuang
    Xing, Ziwen
    Chen, Wenqing
    Yang, Qiaoming
    He, Zhilong
    APPLIED THERMAL ENGINEERING, 2018, 143 : 396 - 402
  • [49] Vibration Characteristics Analysis of Twin-Screw Compressor Shell Based on the Fluid-Solid Coupling Method
    He, Yayin
    Zhang, Wei
    He, Xuyang
    Wang, Kai
    Wang, Junli
    Zhao, Yongqiang
    MECHANIKA, 2024, 30 (02): : 168 - 176
  • [50] Qualitative analysis of twin-screw extruder performance in stabilization pelletizing of HDPE resins
    Harlin, A
    POLYMER ENGINEERING AND SCIENCE, 1996, 36 (03): : 403 - 409