Citation: | LI Zhi-yuan, LI Na, LI Qing-yu, BAO Cheng, TENG Yue. Performance of a membrane humidifier for a proton exchange membrane fuel cell[J]. Chinese Journal of Engineering, 2022, 44(6): 1090-1097. doi: 10.13374/j.issn2095-9389.2021.04.30.002 |
[1] |
Zhang T, Wang P Q, Chen H C, et al. A review of automotive proton exchange membrane fuel cell degradation under start-stop operating condition. Appl Energy, 2018, 223: 249 doi: 10.1016/j.apenergy.2018.04.049
|
[2] |
Chen H C, Zhao X, Zhang T, et al. The reactant starvation of the proton exchange membrane fuel cells for vehicular applications: A review. Energy Convers Manag, 2019, 182: 282 doi: 10.1016/j.enconman.2018.12.049
|
[3] |
馮利利, 陳越, 李吉剛, 等. 碳基復合材料模壓雙極板研究進展. 工程科學學報, 2021, 43(5):585
Feng L L, Chen Y, Li J G, et al. Research progress in carbon-based composite molded bipolar plates. Chin J Eng, 2021, 43(5): 585
|
[4] |
林歆悠, 夏玉田, 魏申申. 基于增強學習算法的插電式燃料電池電動汽車能量管理控制策略. 工程科學學報, 2019, 41(10):1332
Lin X Y, Xia Y T, Wei S S. Energy management control strategy for plug-in fuel cell electric vehicle based on reinforcement learning algorithm. Chin J Eng, 2019, 41(10): 1332
|
[5] |
Chen D M, Li W, Peng H E. An experimental study and model validation of a membrane humidifier for PEM fuel cell humidification control. J Power Sources, 2008, 180(1): 461 doi: 10.1016/j.jpowsour.2008.02.055
|
[6] |
Vasu G, Tangirala A K, Viswanathan B, et al. Continuous bubble humidification and control of relative humidity of H2 for a PEMFC system. Int J Hydrog Energy, 2008, 33(17): 4640 doi: 10.1016/j.ijhydene.2008.05.051
|
[7] |
Natarajan D, Nguyen T. Three-dimensional effects of liquid water flooding in the cathode of a PEM fuel cell. J Power Sources, 2003, 115(1): 66 doi: 10.1016/S0378-7753(02)00624-9
|
[8] |
Li H, Tang Y H, Wang Z W, et al. A review of water flooding issues in the proton exchange membrane fuel cell. J Power Sources, 2008, 178(1): 103 doi: 10.1016/j.jpowsour.2007.12.068
|
[9] |
Réguillet V, Vaudrey A, Moutin S, et al. Definition of efficiency criteria for a fuel cell humidifier: Application to a low power proton exchange membrane fuel cell system for negative surrounding temperatures. Appl Therm Eng, 2013, 58(1-2): 382 doi: 10.1016/j.applthermaleng.2013.03.055
|
[10] |
Casalegno A, De Antonellis S, Colombo L, et al. Design of an innovative enthalpy wheel based humidification system for polymer electrolyte fuel cell. Int J Hydrog Energy, 2011, 36(8): 5000 doi: 10.1016/j.ijhydene.2011.01.012
|
[11] |
Pourrahmani H, Moghimi M, Siavashi M. Thermal management in PEMFCs: The respective effects of porous media in the gas flow channel. Int J Hydrog Energy, 2019, 44(5): 3121 doi: 10.1016/j.ijhydene.2018.11.222
|
[12] |
Pourrahmani H, Moghimi M, Siavashi M, et al. Sensitivity analysis and performance evaluation of the PEMFC using wave-like porous ribs. Appl Therm Eng, 2019, 150: 433 doi: 10.1016/j.applthermaleng.2019.01.010
|
[13] |
Pourrahmani H, Siavashi M, Moghimi M. Design optimization and thermal management of the PEMFC using artificial neural networks. Energy, 2019, 182: 443 doi: 10.1016/j.energy.2019.06.019
|
[14] |
Chang Y F, Qin Y Z, Yin Y, et al. Humidification strategy for polymer electrolyte membrane fuel cells-A review. Appl Energy, 2018, 230: 643 doi: 10.1016/j.apenergy.2018.08.125
|
[15] |
Lao X S, Liu Y, Dai C H, et al. Study on heat and mass transfer performance of cathode membrane humidifier in fuel cell system. IOP Conf Ser:Earth Environ Sci, 2020, 581: 012011 doi: 10.1088/1755-1315/581/1/012011
|
[16] |
Yu S, Im S, Kim S, et al. A parametric study of the performance of a planar membrane humidifier with a heat and mass exchanger model for design optimization. Int J Heat Mass Transf, 2011, 54(7-8): 1344 doi: 10.1016/j.ijheatmasstransfer.2010.11.054
|
[17] |
Park S, Oh I H. An analytical model of Nafion? membrane humidifier for proton exchange membrane fuel cells. J Power Sources, 2009, 188(2): 498 doi: 10.1016/j.jpowsour.2008.12.018
|
[18] |
Hashemi-Valikboni S Z, Ajarostaghi S S M, Delavar M A, et al. Numerical prediction of humidification process in planar porous membrane humidifier of a PEM fuel cell system to evaluate the effects of operating and geometrical parameters. J Therm Anal Calorim, 2020, 141(5): 1687 doi: 10.1007/s10973-020-10058-6
|
[19] |
常國峰, 徐迪, 常志宏, 等. 燃料電池膜增濕器建模及仿真. 同濟大學學報(自然科學版), 2017, 45(2):256
Chang G F, Xu D, Chang Z H, et al. Modeling and simulation research of membrane humidifier used in fuel cell. J Tongji Univ (Nat Sci)
|
[20] |
陳武斌, 常國峰, 許思傳. PEMFC用板式膜增濕器流道流量分配CFD分析. 佳木斯大學學報(自然科學版), 2013, 31(5):660
Chen W B, Chang G F, Xu S C. CFD analysis of flow distribution in planar membrane humidifier channel. J Jiamusi Univ (Nat Sci Ed)
|
[21] |
Bao C, Ouyang M G, Yi B L. Analysis of the water and thermal management in proton exchange membrane fuel cell systems. Int J Hydrog Energy, 2006, 31(8): 1040 doi: 10.1016/j.ijhydene.2005.12.011
|
[22] |
Afshari E, Baharlou H N. An analytic model of membrane humidifier for proton exchange membrane fuel cell. Energy Equip Syst, 2014, 2(1): 83
|
[23] |
Sabharwal M, Duelk C, Bhatia D. Two-dimensional modeling of a cross flow plate and frame membrane humidifier for fuel cell applications. J Membr Sci, 2012, 409-410: 285 doi: 10.1016/j.memsci.2012.03.066
|
[24] |
Khazaee I, Sabadbafan H. Effect of humidity content and direction of the flow of reactant gases on water management in the 4-serpentine and 1-serpentine flow channel in a PEM (proton exchange membrane) fuel cell. Energy, 2016, 101: 252 doi: 10.1016/j.energy.2016.02.026
|
[25] |
Cahalan T, Rehfeldt S, Bauer M, et al. Experimental set-up for analysis of membranes used in external membrane humidification of PEM fuel cells. Int J Hydrog Energy, 2016, 41(31): 13666 doi: 10.1016/j.ijhydene.2016.05.281
|
[26] |
Hwang J J, Chang W R, Kao J K, et al. Experimental study on performance of a planar membrane humidifier for a proton exchange membrane fuel cell stack. J Power Sources, 2012, 215: 69 doi: 10.1016/j.jpowsour.2012.04.051
|
[27] |
Chen C Y, Su J H, Ali H M, et al. Effect of channel structure on the performance of a planar membrane humidifier for proton exchange membrane fuel cell. Int J Heat Mass Transf, 2020, 163: 120522 doi: 10.1016/j.ijheatmasstransfer.2020.120522
|
[28] |
Bao C, Bessler W G. Two-dimensional modeling of a polymer electrolyte membrane fuel cell with long flow channel. Part I. Model development. J Power Sources, 2015, 275: 922
|