Numerical Assessment of SOFC Anode Polarization Based on Three-Dimensional Model Microstructure Reconstructed from FIB-SEM Images

[1]  R. Herbin,et al.  Three-dimensional numerical simulation for various geometries of solid oxide fuel cells , 1996 .

[2]  Masashi Mori,et al.  Characteristics of Slurry‐Coated Nickel Zirconia Cermet Anodes for Solid Oxide Fuel Cells , 1990 .

[3]  E. Wachsman,et al.  Evaluation of the relationship between cathode microstructure and electrochemical behavior for SOFCs , 2009 .

[4]  Marcio Gameiro,et al.  Quantitative three-dimensional microstructure of a solid oxide fuel cell cathode , 2009 .

[5]  Nigel P. Brandon,et al.  Microstructural Modeling of Solid Oxide Fuel Cell Anodes , 2008 .

[6]  Konstantin Mischaikow,et al.  Three-Dimensional Analysis of Solid Oxide Fuel Cell Ni-YSZ Anode Interconnectivity , 2009, Microscopy and Microanalysis.

[7]  N. Shikazono,et al.  Microstructure and polarization characteristics of anode supported tubular solid oxide fuel cell with co-precipitated and mechanically mixed Ni-YSZ anodes , 2009 .

[8]  Wilson K. S. Chiu,et al.  Lattice Boltzmann modeling of 2D gas transport in a solid oxide fuel cell anode , 2007 .

[9]  Michael R. von Spakovsky,et al.  Direct numerical calculation of the kinematic tortuosity of reactive mixture flow in the anode layer of solid oxide fuel cells by the lattice Boltzmann method , 2007 .

[10]  S. Torquato,et al.  Reconstructing random media. II. Three-dimensional media from two-dimensional cuts , 1998 .

[11]  U. Anselmi-Tamburini Electrical properties of Ni / YSZ cermets obtained through combustion synthesis , 1998 .

[12]  Nobuhide Kasagi,et al.  Micro modeling of solid oxide fuel cell anode based on stochastic reconstruction , 2008 .

[13]  Hiroshi Iwai,et al.  Quantification of SOFC anode microstructure based on dual beam FIB-SEM technique , 2010 .

[14]  Jon M. Hiller,et al.  Three-dimensional reconstruction of a solid-oxide fuel-cell anode , 2006, Nature materials.

[15]  Y. W. Li,et al.  CFD-calculation of flow, dispersion and reaction in a catalyst filled tube by the lattice Boltzmann method , 2001 .

[16]  P. Shearing,et al.  3D reconstruction of SOFC anodes using a focused ion beam lift-out technique , 2009 .

[17]  S. Barnett,et al.  Solid Oxide Fuel Cell Ni–YSZ Anodes: Effect of Composition on Microstructure and Performance , 2008 .

[18]  E. Wachsman,et al.  Three-Dimensional Reconstruction of Porous LSCF Cathodes , 2007 .

[19]  Koji Amano,et al.  Electrode reaction at Pt, O2(g)/stabilized zirconia interfaces. Part I: Theoretical consideration of reaction model , 1987 .

[20]  刘庆国,et al.  High Temperature Solid Oxide Fuel Cells(SOFC) , 1993 .

[21]  Wilson K. S. Chiu,et al.  Lattice Boltzmann model for multi-component mass transfer in a solid oxide fuel cell anode with heterogeneous internal reformation and electrochemistry , 2009 .

[22]  J. Georgiadis,et al.  An Evaluation of the Bounce-Back Boundary Condition for Lattice Boltzmann Simulations , 1997 .

[23]  R. Krishna,et al.  The Maxwell-Stefan approach to mass transfer , 1997 .

[24]  Wilson K. S. Chiu,et al.  Nondestructive Reconstruction and Analysis of SOFC Anodes Using X-ray Computed Tomography at Sub-50 nm Resolution , 2008 .