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采用不同流场的质子交换膜燃料电池内部传递现象模拟
引用本文:胡鸣若,朱新坚,顾安忠.采用不同流场的质子交换膜燃料电池内部传递现象模拟[J].中国化学工程学报,2004,12(1):14-26.
作者姓名:胡鸣若  朱新坚  顾安忠
作者单位:[1]InstituteofFuelCell,ShanghaiJiaotongUniversity,Shanghai200030,China [2]InstituteofRefrigerationandCryogenics,ShanghaiJiaotongUniversity,Shanghai200030,China
基金项目:面向21世纪教育振兴行动计划(985计划)
摘    要:A numerical model for proton exchange membrane (PEM) fuel cell is developed, which can simulate such basic transport phenomena as gas-liquid two-phase flow in a working fuel cell. Boundary conditions for both the conventional and the interdigitated modes of flow are presented on a three-dimensional basis. Numerical techniques for this model are discussed in detail. Validation shows good agreement between simulating results and experimental data. Furthermore, internal transport phenomena are discussed and compared for PEM fuel cells with conventional and interdigitated flows. It is found that the dead-ended structure of an interdigitated flow does increase the oxygen mass fraction and decrease the liquid water saturation in the gas diffusion layer as compared to the conventional mode of flow. However, the cathode humidification is important for an interdigitated flow to acquire better performance than a conventional flow fuel cell.

关 键 词:质子交换膜  燃料电池  数值模型  含水饱和度
修稿时间: 

Simulation of the Internal Transport Phenomena for PEM Fuel Cells with Different Modes of Flow
HU Mingruo,ZHU Xinjian,GU Anzhong.Simulation of the Internal Transport Phenomena for PEM Fuel Cells with Different Modes of Flow[J].Chinese Journal of Chemical Engineering,2004,12(1):14-26.
Authors:HU Mingruo  ZHU Xinjian  GU Anzhong
Affiliation:Institute of Fuel Cell, Shanghai Jiaotong University, Shanghai 200030,China;Institute of Refrigeration and Cryogenics, Shanghai Jiaotong University, Shanghai 200030,China
Abstract:A numerical model for proton exchange membrane (PEM) fuel cell is developed, which can simulate such basic transport phenomena as gas-liquid two-phase flow in a working fuel cell. Boundary conditions for both the conventional and the interdigitated modes of flow are presented on a three-dimensional basis. Numerical techniques for this model are discussed in detail. Validation shows good agreement between simulating results and experimental data. Furthermore, internal transport phenomena are discussed and compared for PEM fuel cells with conventional and interdigitated flows. It is found that the dead-ended structure of an interdigitated flow does increase the oxygen mass fraction and decrease the liquid water saturation in the gas diffusion layer as compared to the conventional mode of flow. However, the cathode humidification is important for an interdigitated flow to acquire better performance than a conventional flow fuel cell.
Keywords:proton exchange membrane fuel cell  numerical model  liquid water saturation  conventional flow  interdigitated flow  humidification
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