Experimental study on liquid-gas phase separation driven by pressure gradient in transport membrane condenser

被引:2
|
作者
Li, Xiangsheng [1 ]
Xue, Kaili [1 ]
Yang, Jihao [1 ]
Cai, Peihao [2 ]
Zhang, Heng [1 ]
Chen, Haiping [1 ]
Cheng, Chao [1 ]
Li, Zhaohao [1 ]
机构
[1] North China Elect Power Univ, Sch Energy Power & Mech Engn, Beijing Key Lab Pollutant Monitoring & Control The, Beijing 102206, Peoples R China
[2] North China Elect Power Univ, Dept Math & Phys, Beijing 102206, Peoples R China
基金
中国博士后科学基金;
关键词
Water recovery; Ceramic membrane; Driving force; Operation design; Coal-fired power plants; WATER-RECOVERY; FLUE-GAS; HEAT-TRANSFER; MASS-TRANSFER; WASTE HEAT; TUBE; PERFORMANCE; EXCHANGE; SCALE; CYCLE;
D O I
10.1016/j.energy.2023.128749
中图分类号
O414.1 [热力学];
学科分类号
摘要
Flue gas moisture recovery from coal-fired power plants has always been an important topic in the fields of energy and building and gas dehumidification. Moisture and waste heat recovery in a transport membrane condenser (TMC) involves heat transfer, mass transfer and intermolecular interactions. This study, an experiment was designed based on TMC, which revealed the process of vapor condensation on the membrane surface and mass transfer across the membrane, and clarified the driving mechanism of mass transfer. It is found that the main driving force affecting the mass transfer is related to the recovery mechanism and the flowing working fluid. The main driving force influencing mass transfer on the flue gas side is the pressure gradient caused by the vapor pressure difference, whereas on the condensation side, mass transfer is influenced through the heat transfer gradient. Furthermore, high vacuum levels on the permeate side may enhance gas cross-membrane transport, but do not improve mass transfer performance. Compared with a longitudinal spacing of 30 mm, the condensation mass transfer rate of TMC with a longitudinal spacing of 80 mm increased by 107%-174%. The research results have an important role in promoting the realization of resource recovery and energy efficiency.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] ANALYSIS OF TRANSPORT IN A PRESSURE-DRIVEN MEMBRANE SEPARATION PROCESS
    THIEL, SW
    LLOYD, DR
    DICKSON, JM
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1984, 188 (AUG): : 46 - INDE
  • [22] Gas separation by liquid membrane accompanied by permeation of membrane liquid through membrane physical transport
    Teramoto, M
    Takeuchi, N
    Maki, T
    Matsuyama, H
    SEPARATION AND PURIFICATION TECHNOLOGY, 2001, 24 (1-2) : 101 - 112
  • [23] Effect of geometric parameters of liquid-gas separator units on phase separation performance
    Songping Mo
    Xueqing Chen
    Ying Chen
    Zhen Yang
    Korean Journal of Chemical Engineering, 2015, 32 : 1243 - 1248
  • [24] Driven granular media and dissipative gases: Correlations and liquid-gas phase transitions
    Williams, DRM
    STATISTICAL MECHANICS IN PHYSICS AND BIOLOGY, 1997, 463 : 325 - 330
  • [25] Driven granular media and dissipative gases: Correlations and liquid-gas phase transitions
    Williams, DRM
    PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 1996, 233 (3-4) : 718 - 729
  • [26] When and why do gradients of the gas phase composition and pressure affect liquid-gas transfer?
    Baeten, Janis E.
    van Loosdrecht, Mark C. M.
    Volcke, Eveline I. P.
    WATER RESEARCH, 2020, 178
  • [27] EXPERIMENTAL ANALYSIS OF A LIQUID-GAS TWO-PHASE FLOW IN A FLOW DISTRIBUTOR
    Lino, Luiz H. M.
    Eidt, Henrique K.
    Rodrigues, Carolina C.
    Ofuchi, Cesar Y.
    Santos, Paulo H. D.
    Neves, Flavio, Jr.
    Silva, Marco J.
    Morales, Rigoberto E. M.
    PROCEEDINGS OF THE ASME/JSME/KSME JOINT FLUIDS ENGINEERING CONFERENCE, 2019, VOL 4, 2019,
  • [28] Bimodality:: A possible experimental signature of the liquid-gas phase transition of nuclear matter
    Pichon, M.
    Tamain, B.
    Bougault, R.
    Gulminelli, F.
    Lopez, O.
    Bonnet, E.
    Borderie, B.
    Chbihi, A.
    Dayras, R.
    Frankland, J. D.
    Galichet, E.
    Guinet, D.
    Lautesse, P.
    Le Neindre, N.
    Parlog, M.
    Rivet, M. F.
    Roy, R.
    Rosato, E.
    Vient, E.
    Vigilante, A.
    Volant, C.
    Wieleczko, J. P.
    Zwieglinski, B.
    NUCLEAR PHYSICS A, 2006, 779 : 267 - 296
  • [29] EXPERIMENTAL-EVIDENCE FOR A LIQUID-GAS PHASE-TRANSITION IN NUCLEAR SYSTEMS
    PANAGIOTOU, AD
    CURTIN, MW
    TOKI, H
    SCOTT, DK
    SIEMENS, PJ
    PHYSICAL REVIEW LETTERS, 1984, 52 (07) : 496 - 499
  • [30] Experimental Investigation of the Gas/Liquid Phase Separation Using a Membrane-Based Micro Contactor
    Dyrda, Kay Marcel
    Wilke, Vincent
    Haas-Santo, Katja
    Dittmeyer, Roland
    CHEMENGINEERING, 2018, 2 (04) : 1 - 26