Experimental and numerical investigation of the operating performance of air-to-air membrane enthalpy exchangers

被引:3
|
作者
Albdoor, Ahmed K. [1 ,2 ]
Ma, Zhenjun [1 ]
Al-Ghazzawi, Fatimah [2 ,3 ,4 ]
Liu, Jingjing [1 ]
Awan, Muhammed B. [1 ]
机构
[1] Univ Wollongong, Sustainable Bldg Res Ctr SBRC, Wollongong, NSW 2522, Australia
[2] Southern Tech Univ, Al Nasiriyah Tech Inst, Thi Qar 64001, Iraq
[3] Univ Wollongong, Intelligent Polymer Res Inst, Wollongong, NSW 2522, Australia
[4] Univ Wollongong, ARC Ctr Electromat Sci, Wollongong, NSW 2522, Australia
关键词
Energy recovery; Membrane enthalpy exchanger; Performance evaluation; Heat and moisture transfer; Mathematical modelling; MASS-TRANSFER; HEAT; PLATE; VENTILATION; SYSTEM;
D O I
10.1016/j.seta.2021.101722
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study examined the impacts of major operating parameters on the performance of a cross flow membrane enthalpy exchanger (MEE) with porous membranes. A lab-scale setup was developed to conduct the experiments based on the test matrix designed with various operating conditions for both heating and cooling operations. The MEE core was made of porous membranes. A mathematical model was developed to predict the transferred heat and moisture fluxes through the membrane. The model implemented a variable moisture diffusivity of the membrane that varied with local air conditions. It was found that the sensible, latent, and total effectiveness of the MEE significantly improved when reducing the airflow rate. In the cooling mode, outdoor air temperature and humidity had a positive influence on the MEE effectiveness, while they showed a negative impact on the heating operations. However, the influences of outdoor conditions on the sensible, latent, and total effectiveness of the MEE were rather insignificant as compared to that of the airflow rate. On the other hand, both airflow rate and outdoor conditions showed significant effects on thermal resistance and total energy recovered for both operating modes. The findings obtained can be used to facilitate optimal design of such devices.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Air-to-air energy recovery heat exchangers
    Dieckmann, J
    Roth, KW
    Brodrick, J
    ASHRAE JOURNAL, 2003, 45 (08) : 57 - 58
  • [22] AIR-TO-AIR HEAT-EXCHANGERS FOR HOUSES
    SHURCLIFF, WA
    ANNUAL REVIEW OF ENERGY, 1988, 13 : 1 - 22
  • [23] Experimental methods for detecting frosting in energy exchangers cross-flow air-to-air energy exchangers
    Nasr, Mohammad Rafati
    Fathieh, Farhad
    Kadylak, David
    Huizing, Ryan
    Besant, Robert W.
    Simonson, Carey J.
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2016, 77 : 100 - 115
  • [24] Experimental investigation and performance evaluation of a mixed-flow air to air membrane enthalpy exchanger with different configurations
    Albdoor, Ahmed K.
    Ma, Zhenjun
    Cooper, Paul
    APPLIED THERMAL ENGINEERING, 2020, 166
  • [25] RESIDENTIAL AIR-TO-AIR HEAT-EXCHANGERS - PERFORMANCE, ENERGY SAVINGS, AND ECONOMICS
    FISK, WJ
    TURIEL, I
    ENERGY AND BUILDINGS, 1983, 5 (03) : 197 - 211
  • [26] Experimental and Numerical Investigation of Liquid-to-Air Heat Exchangers
    Sanchez, Jaime A.
    Kulkarni, Devdatta
    Tang, Xudong
    Winkel, Casey
    PROCEEDINGS OF THE 17TH IEEE INTERSOCIETY CONFERENCE ON THERMAL AND THERMOMECHANICAL PHENOMENA IN ELECTRONIC SYSTEMS (ITHERM 2018), 2018, : 497 - 503
  • [27] Modelling heat and mass transfer in a membrane-based air-to-air enthalpy exchanger
    Dugaria, S.
    Moro, L.
    Del Col, D.
    33RD UIT (ITALIAN UNION OF THERMO-FLUID DYNAMICS) HEAT TRANSFER CONFERENCE, 2015, 655
  • [28] AIR-TO-AIR HEAT-EXCHANGERS AND THE INDOOR ENVIRONMENT
    VINE, E
    ENERGY, 1987, 12 (12) : 1209 - 1215
  • [29] Experimental Measurement of Frosting Limits in Cross-Flow Air-to-Air Energy Exchangers
    Nasr, Mohammad Rafati
    Simonson, Carey J.
    ASHRAE TRANSACTIONS 2017, VOL 123, PT 1, 2017, 123 : 174 - 181
  • [30] Performance Deteriorations from Flow Maldistribution in Air-to-Air Heat Exchangers: A Parallel-Plates Membrane Core Case
    Zhang, Li-Zhi
    NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2009, 56 (09) : 746 - 763