Study on the spontaneous condensation of moist air in the high-speed turbo-expander

被引:6
|
作者
Yang, Xiaoling [1 ]
Chen, Liang [1 ]
Wang, Zhefeng [1 ]
Chen, Shuangtao [1 ]
Hou, Yu [1 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Multiphase Flow Power Engn, Xian 710049, Peoples R China
关键词
Spontaneous condensation; Moist air; Turbo-expander; Non-equilibrium model; Energy loss; NONEQUILIBRIUM CONDENSATION; WATER-VAPOR; STEAM FLOW; EXPANSION;
D O I
10.1016/j.icheatmasstransfer.2022.106594
中图分类号
O414.1 [热力学];
学科分类号
摘要
Spontaneous condensation processes are common in the industry and have a significant impact on the aero-dynamic characteristics of turbines. The spontaneous condensation process of moist air in a high-speed turbo -expander was investigated experimentally and numerically. Temperature and humidity of the moist air into the turbo-expander were controlled independently in a psychrometric chamber. A liquid fraction of 0.8% was achieved at the turbo-expander outlet which was corresponding to a relative humidity of 76.9% at 303.2 K. The non-equilibrium condensation model was validated against the experimental results, and the maximum relative deviations of outlet temperature, absolute humidity, and moist efficiency were 0.16%, 3.23%, and 2.15%, respectively. Based on numerical simulations, the nucleation process and droplet distribution in the turbo -expander were studied. Compared with the suction surface, the nucleation region near the pressure surface was more extensive. The effect of inlet temperature, humidity, and pressure was compared. The inlet pressure had the most significant impact on the nucleation initial position, and the inlet temperature mainly determined the nucleation rate and droplet number. The wetness loss due to the vapor condensation mainly occurred in the impeller, and the efficiency drop could reach 2.17% when the pressure ratio was 2.1.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Characteristics of transonic moist air flows around butterfly valves with spontaneous condensation
    Hasan, A. B. M. Toufique
    Matsuo, S.
    Setoguchi, T.
    PROPULSION AND POWER RESEARCH, 2015, 4 (02) : 72 - 83
  • [32] A study of the optimal operating conditions in the organic Rankine cycle using a turbo-expander for fluctuations of the available thermal energy
    Cho, Soo-Yong
    Cho, Chong-Hyun
    Ahn, Kook-Young
    Lee, Young Duk
    Energy, 2014, 64 : 900 - 911
  • [34] Numerical study on two-phase expansion performance and quantitative analysis of wetness loss in cryogenic turbo-expander
    Niu, Lu
    Zhong, Zhigang
    Hong, Xingfu
    Chen, Shuangtao
    Hou, Yu
    CRYOGENICS, 2020, 110 (110)
  • [35] High speed turbo blowers with air bearings
    Park, Ki Cheol
    Beltrán, Luis
    Neira, Christian
    Celulosa Y Papel, 2019, 35 (03): : 24 - 27
  • [36] Feasibility study on high-speed rail and air cooperation
    Luo, Jianghao
    PROCEEDINGS OF THE 5TH INTERNATIONAL CONFERENCE ON CIVIL ENGINEERING AND TRANSPORTATION 2015, 2016, 30 : 1708 - 1711
  • [37] A study on hydrodynamics of the air cushion of a high-speed PACSCAT
    Guo, Zhiqun
    Qin, Hongde
    Ma, Q. W.
    EUROPEAN JOURNAL OF MECHANICS B-FLUIDS, 2018, 72 : 353 - 363
  • [38] A Study of Moist Air Condensation Characteristics in a Transonic Flow System
    Wang, Jie
    Gu, Hongfang
    ENERGIES, 2021, 14 (13)
  • [39] A STUDY OF THE STRUCTURE AND THE ULTRASONIC EMISSION OF A HIGH-SPEED AIR JET WITH AN ULTRA HIGH-SPEED ELECTRONIC CAMERA
    CANAC, F
    MERLE, M
    JOURNAL OF THE SMPTE-SOCIETY OF MOTION PICTURE AND TELEVISION ENGINEERS, 1960, 69 (09): : 672 - 672
  • [40] TURBO-BLAST for high-speed wireless communications
    Sellathurai, M
    Haykin, S
    WCNC: 2000 IEEE WIRELESS COMMUNICATIONS AND NETWORKING CONFERENCE, VOLS 1-3, 2000, : 315 - 320