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管式固体氧化物燃料电池机理模型与性能分析
引用本文:史翊翔,李晨,蔡宁生.管式固体氧化物燃料电池机理模型与性能分析[J].化工学报,2007,58(3):722-727.
作者姓名:史翊翔  李晨  蔡宁生
作者单位:清华大学热科学与动力工程教育部重点实验室
摘    要:针对Siemens-Westinghouse公司阴极支撑型(AES)管式固体氧化物燃料电池,耦合电极内部离子传导、电子传导、气体扩散、热量传递及电化学反应过程,建立了全面考虑活化极化、欧姆极化与浓差极化损失的管式SOFC横截面方向二维微观机理模型。模型计算结果与文献中实验数据吻合较好,模拟结果表明:电池横截面方向的组分浓度和电流密度的分布与SOFC的运行工况密切相关。连接器的存在和尺寸对电池工作性能均有较强影响。对于所研究的阴极支撑型SOFC,电池性能会受到氧气在多孔阴极中扩散过程的限制,改善多孔电极的微观结构可有效提高电池运行性能。

关 键 词:管式固体氧化物燃料电池  阴极支撑  机理模型  极化  传递  管式  固体氧化物燃料电池  机理模型  性能分析  tubular  solid  oxide  fuel  cell  study  performance  development  运行性能  微观结构  多孔电极  改善  扩散过程  氧气  电池性能  研究  影响  工作  尺寸  存在
文章编号:0438-1157(2007)03-0722-06
收稿时间:2006-3-2
修稿时间:2006-03-022006-04-14

Mechanistic model development and performance study of cathode-supported tubular solid oxide fuel cell
SHI Yixiang,LI Chen,CAI Ningsheng.Mechanistic model development and performance study of cathode-supported tubular solid oxide fuel cell[J].Journal of Chemical Industry and Engineering(China),2007,58(3):722-727.
Authors:SHI Yixiang  LI Chen  CAI Ningsheng
Affiliation:Key Laboratory for Thermal Science and Power Engineering, Ministry of Education, Tsinghua University, Beijing 100084, China
Abstract:A cross-section direction two-dimensional mechanistic model of the Siemens-Westinghouse Power Corporation’s (SWPCs) cathode-supported tubular solid oxide fuel cell(SOFC) was developed.The model coupled the intricate interdependency among the ionic conduction, electronic conduction, gas transport, heat transfer and electrochemical processes.Three forms of polarization (activation polarization, Ohmic polarization, concentration polarization) were considered.Result validation showed good agreement with the published experimental data.The simulation results predicted that the species concentration and current density distributions were related to SOFC operating conditions.The size of current collector would affect the cell performance and should be carefully chosen.Gas diffusion through a thick and porous cathode was proven to be one of the performance-limiting factors and better cell performance could be achieved through the optimization of electrode microstructure.
Keywords:tubular SOFC  cathode-supported  mechanistic model  polarization  transport
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