Investigation of self-humidified and dead-ended anode proton exchange membrane fuel cell performance using electrochemical impedance spectroscopy

被引:27
|
作者
Asgharr, Saeed [1 ]
Khorasani, Mohammad Reza Ashraf [1 ]
Dashti, Isar [1 ]
机构
[1] Iranian Space Res Ctr, Inst Mat & Energy, 7th Kilometer Imam Ave,POB 81395-619, Esfahan, Iran
关键词
Proton exchange membrane fuel cell (PEMFC); Self-humidified; Dead-ended anode (DEA); Electrochemical impedance spectroscopy (EIS); Nitrogen crossover; NITROGEN CROSSOVER; GAS-CROSSOVER; PURGE CYCLE; DEGRADATION; TEMPERATURE; SYSTEM; PEMFC; OPTIMIZATION; BEHAVIOR; STACK;
D O I
10.1016/j.ijhydene.2016.05.133
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Self-humidified dead-ended anode proton exchange membrane fuel cell is increasingly being used in some special applications due to its need for simpler and lower cost subsystems. However, the performance of such a fuel cell is more affected by the operational parameters and conditions than the traditional proton exchange membrane fuel cells. Therefore, realizing the most effective parameters and determining their optimum values are essential. In the present study, electrochemical impedance spectroscopy is used to examine the effect of working conditions on the performance of a self-humidified dead ended anode fuel cell. Working temperature, air stoichiometry, and purge interval are selected to assess their effects on the fuel cell performance. The results show that the performance enhances by increasing the working temperature up to 50 degrees C, but further increase of the temperature causes an intense reduction in the performance due to a combination of severe membrane drying and build-up of nitrogen in the anode side. The impedance spectra are greatly influenced by the air stoichiometry since increasing the air stoichiometry may lead to severe membrane drying in one hand and increasing mass transport resistance due to accumulation of N-2 in the anode side, on the other hand. While the impedance spectra are less affected by the purge interval at its low values, large values of the purge interval lead to significant mass transport issues. Wasted electrical energy and wasted energy due to hydrogen purging are calculated and compared at different purge intervals. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:12347 / 12357
页数:11
相关论文
共 50 条
  • [31] Modeling and analysis of water droplet dynamics in the dead-ended anode gas channel for proton exchange membrane fuel cells
    Shao, Heng
    Qiu, Diankai
    Peng, Linfa
    Yi, Peiyun
    Lai, Xinmin
    RENEWABLE ENERGY, 2019, 138 : 842 - 851
  • [32] Experimental study on water management improvement of proton exchange membrane fuel cells with dead-ended anode by periodically supplying fuel from anode outlet
    Zhao, Jing
    Jian, Qifei
    Huang, Zipeng
    Luo, Lizhong
    Huang, Bi
    JOURNAL OF POWER SOURCES, 2019, 435
  • [33] Dead-ended anode polymer electrolyte fuel cell stack operation investigated using electrochemical impedance spectroscopy, off-gas analysis and thermal imaging
    Meyer, Quentin
    Ashton, Sean
    Curnick, Oliver
    Reisch, Tobias
    Adcock, Paul
    Ronaszegi, Krisztian
    Robinson, James B.
    Brett, Daniel J. L.
    JOURNAL OF POWER SOURCES, 2014, 254 : 1 - 9
  • [34] A transient heat and mass transfer CFD simulation for proton exchange membrane fuel cells (PEMFC) with a dead-ended anode channel
    Peng, Yeping
    Mahyari, Hamed Moradi
    Moshfegh, Abouzar
    Javadzadegan, Ashkan
    Toghraie, Davood
    Shams, Mehrzad
    Rostami, Sara
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2020, 115
  • [35] Visualization study on enhancing water transport of proton exchange membrane fuel cells with a dead-ended anode by generating fluctuating flow at anode compartment
    Zhao, Jing
    Jian, Qifei
    Huang, Zipeng
    ENERGY CONVERSION AND MANAGEMENT, 2020, 206
  • [36] Investigations on the double gas diffusion backing layer for performance improvement of self-humidified proton exchange membrane fuel cells
    Kong, Im Mo
    Jung, Aeri
    Kim, Min Soo
    APPLIED ENERGY, 2016, 176 : 149 - 156
  • [37] Nitrogen Front Evolution in Purged Polymer Electrolyte Membrane Fuel Cell with Dead-Ended Anode
    Siegel, Jason B.
    Bohac, Stanislav V.
    Stefanopoulou, Anna G.
    Yesilyurt, Serhat
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2010, 157 (07) : B1081 - B1093
  • [38] In situ analysis of voltage degradation in a polymer electrolyte membrane fuel cell with a dead-ended anode
    Chevalier, S.
    Ge, N.
    Lee, J.
    Antonacci, P.
    Yip, R.
    George, M. G.
    Liu, H.
    Banerjee, R.
    Fazeli, M.
    Bazylak, A.
    ELECTROCHEMISTRY COMMUNICATIONS, 2015, 59 : 16 - 19
  • [39] Detecting performance degradation in a dead-ended hydrogen-oxygen proton exchange membrane fuel cell used for an unmanned underwater vehicle
    Liu, Yang
    Zhao, Junjie
    Tu, Zhengkai
    RENEWABLE ENERGY, 2024, 222
  • [40] Efficiency measurement and uncertainty discussion of an electric engine powered by a "self-breathing" and "self-humidified" proton exchange membrane fuel cell
    Schiavetti, Pierluigi
    Del Prete, Zaccaria
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2007, 78 (08):