Exergy and Exergoeconomic Analysis for the Proton Exchange Membrane Water Electrolysis under Various Operating Conditions and Design Parameters

被引:14
|
作者
Hassan, Alamir H. [1 ,2 ]
Liao, Zhirong [1 ]
Wang, Kaichen [1 ]
Abdelsamie, Mostafa M. [2 ]
Xu, Chao [1 ]
Wang, Yanhui [3 ]
机构
[1] North China Elect Power Univ, Sch Energy Power & Mech Engn, Key Lab Power Stn Energy Transfer Convers & Syst, Minist Educ, Beijing 102206, Peoples R China
[2] Helwan Univ, Fac Engn Mattaria, Mech Power Engn Dept, Cairo 11718, Egypt
[3] Beijing Inst Technol, Sch Mech Engn, Beijing 100081, Peoples R China
基金
中国国家自然科学基金;
关键词
proton exchange membrane; finite element methods; exergoeconomic analysis; gas crossover; renewable energy resources; PEM ELECTROLYZER; HYDROGEN-PRODUCTION; PERFORMANCE ASSESSMENT; GAS CROSSOVER; 2-PHASE FLOW; ENERGY; FUEL; TRANSPORT; MODEL; EFFICIENCY;
D O I
10.3390/en15218247
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Integrating the exergy and economic analyses of water electrolyzers is the pivotal way to comprehend the interplay of system costs and improve system performance. For this, a 3D numerical model based on COMSOL Multiphysics Software (version 5.6, COMSOL, Stockholm, Sweden) is integrated with the exergy and exergoeconomic analysis to evaluate the exergoeconomic performance of the proton exchange membrane water electrolysis (PEMWE) under different operating conditions (operating temperature, cathode pressure, current density) and design parameter (membrane thickness). Further, the gas crossover phenomenon is investigated to estimate the impact of gas leakage on analysis reliability under various conditions and criteria. The results reveal that increasing the operating temperature or decreasing the membrane thickness improves both the efficiency and cost of hydrogen exergy while increasing the gas leakage through the membrane. Likewise, raising the current density and the cathode pressure lowers the hydrogen exergy cost and improves the economic performance. The increase in exergy destroyed and hydrogen exergy cost, as well as the decline in second law efficiency due to the gas crossover, are more noticeable at higher pressures. As the cathode pressure rises from 1 to 30 bar at a current density of 10,000 A/m(2), the increase in exergy destroyed and hydrogen exergy cost, as well as the decline in second law efficiency, are increased by 37.6 kJ/mol, 4.49 USD/GJ, and 7.1%, respectively. The cheapest green electricity source, which is achieved using onshore wind energy and hydropower, reduces hydrogen production costs and enhances economic efficiency. The growth in the hydrogen exergy cost is by about 4.23 USD/GJ for a 0.01 USD/kWh increase in electricity price at the current density of 20,000 A/m(2). All findings would be expected to be quite useful for researchers engaged in the design, development, and optimization of PEMWE.
引用
收藏
页数:24
相关论文
共 50 条
  • [21] Analysis of water and thermal management with coolant operating conditions for a proton exchange membrane fuel cell
    Cheong, Seongir
    Kim, Taewan
    Kim, Doohyun
    Lee, Jaekeun
    Hwang, Yujin
    CURRENT APPLIED PHYSICS, 2010, 10 : S22 - S25
  • [22] Oxidant starvation under various operating conditions on local and transient performance of proton exchange membrane fuel cells
    Jia, Fei
    Tian, Xiaodi
    Liu, Fengfeng
    Ye, Junjie
    Yang, Chengpeng
    APPLIED ENERGY, 2023, 331
  • [23] Effect of power quality on the design of proton exchange membrane water electrolysis systems
    Koponen, Joonas
    Ruuskanen, Vesa
    Hehemann, Michael
    Rauls, Edward
    Kosonen, Antti
    Ahola, Jero
    Stolten, Detlef
    APPLIED ENERGY, 2020, 279
  • [24] Exergoeconomic analysis of a PEM fuel cell at various operating conditions
    Kazim, A
    ENERGY CONVERSION AND MANAGEMENT, 2005, 46 (7-8) : 1073 - 1081
  • [25] Sensitivity analysis of operating parameters of proton exchange membrane fuel cells
    Liu, Fei
    Li, Xichao
    Zhao, Peiwen
    Sun, Xianwei
    Zhao, Jingxiang
    Shen, Jun
    Dai, Zuoqiang
    Zheng, Lili
    IONICS, 2023, 29 (12) : 5431 - 5440
  • [26] Sensitivity analysis of operating parameters of proton exchange membrane fuel cells
    Fei Liu
    Xichao Li
    Peiwen Zhao
    Xianwei Sun
    Jingxiang Zhao
    Jun Shen
    Zuoqiang Dai
    Lili Zheng
    Ionics, 2023, 29 : 5431 - 5440
  • [27] Sensitivity analysis of operating parameters for proton exchange membrane fuel cells
    Yang Z.-R.
    Li Y.
    Ji X.-F.
    Liu F.
    Hao D.
    Jilin Daxue Xuebao (Gongxueban)/Journal of Jilin University (Engineering and Technology Edition), 2022, 52 (09): : 1971 - 1981
  • [28] Proton exchange membrane electrolysis sustained by water vapor
    Spurgeon, Joshua M.
    Lewis, Nathan S.
    ENERGY & ENVIRONMENTAL SCIENCE, 2011, 4 (08) : 2993 - 2998
  • [29] Recent advances in proton exchange membrane water electrolysis
    Liu, Rui-Ting
    Xu, Zheng-Long
    Li, Fu-Min
    Chen, Fei-Yang
    Yu, Jing-Ya
    Yan, Ya
    Chen, Yu
    Xia, Bao Yu
    CHEMICAL SOCIETY REVIEWS, 2023, 52 (16) : 5652 - 5683
  • [30] Reversible Losses in Proton Exchange Membrane Water Electrolysis
    Blair, Sarah J.
    Wrubel, Jacob A.
    Parrish, Chance
    Parimuha, Makenzie R.
    Foster, Jayson
    Pylypenko, Svitlana
    Alia, Shaun M.
    Mauger, Scott A.
    Padgett, Elliot
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2025, 172 (03)