Lattice Boltzmann Modeling of Three-Dimensional, Multicomponent Mass Diffusion in a Solid Oxide Fuel Cell Anode

被引:43
|
作者
Joshi, Abhijit S. [1 ]
Grew, Kyle N. [1 ]
Izzo, John R., Jr. [1 ]
Peracchio, Aldo A. [1 ]
Chiu, Wilson K. S. [1 ]
机构
[1] Univ Connecticut, Dept Mech Engn, Storrs, CT 06269 USA
来源
关键词
lattice Boltzmann method; X-ray computed tomography; solid oxide fuel cell; concentration polarization; multicomponent mass diffusion; GAS-TRANSPORT; POLARIZATION; CONTINUUM;
D O I
10.1115/1.3117251
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
The lattice Boltzmann method (LBM) was used to study the three-dimensional (3D) mass diffusion of three species (H-2, H2O, and N-2) in the pore phase of a porous solid oxide fuel cell (SOFC) anode. The method used is an extension of a two-dimensional (2D) LBM model (2007, "Lattice Boltzmann Method for Continuum, Multi-Component Mass Diffusion in Complex 2D Geometries," J. Phys. D, 40, pp. 2961-2971) to study mass transport in SOFC anodes (2007, " Lattice Boltzmann Modeling of 2D Gas Transport in a Solid Oxide Fuel Cell Anode," J. Power Sources, 164, pp. 631-638). The 3D porous anode geometry is initially modeled using a set of randomly packed and overlapping solid spheres. Results using this simple geometry model are then compared with results for an actual SOFC anode geometry obtained using X-ray computed tomography (XCT) at sub-50 nm resolution. The effective diffusivity D-eff of the porous anode is a parameter, which is widely used in system-level models. However, empirical relationships often used to calculate this value may not be accurate for the porous geometry that is actually used. Solution of the 3D Laplace equation provides a more reliable and accurate means to estimate the effective diffusivity for a given anode geometry. The effective diffusivity is calculated for different geometries and for a range of porosity values, both for the 3D sphere packing model and for the real geometry obtained by XCT. The LBM model is then used to predict species mole fractions within the spherical packing model geometry and the XCT geometry. The mole fraction variation is subsequently used to calculate the concentration polarization. These predictions compare well with previously obtained 2D results and with results reported in the literature. The 3D mass transport model developed in this work can be eventually coupled with other transport models and be used to optimize the anode microstructure geometry. [DOI: 10.1115/1.3117251]
引用
收藏
页码:0110061 / 0110068
页数:8
相关论文
共 50 条
  • [31] Three-dimensional modeling of PEMFC with contaminated anode fuel
    Abdollahzadeh, M.
    Ribeirinha, P.
    Boaventura, M.
    Mendes, A.
    [J]. ENERGY, 2018, 152 : 939 - 959
  • [32] Three-dimensional modeling of pressure effect on operating characteristics and performance of solid oxide fuel cell
    Wang, Yang
    Zhan, Ruobing
    Qin, Yanzhou
    Zhang, Guobin
    Du, Qing
    Jiao, Kui
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (43) : 20059 - 20076
  • [33] Lattice Boltzmann model for multi-component mass transfer in a solid oxide fuel cell anode with heterogeneous internal reformation and electrochemistry
    Chiu, W. K. S.
    Joshi, A. S.
    Grew, K. N.
    [J]. EUROPEAN PHYSICAL JOURNAL-SPECIAL TOPICS, 2009, 171 : 159 - 165
  • [34] Lattice Boltzmann model for multi-component mass transfer in a solid oxide fuel cell anode with heterogeneous internal reformation and electrochemistry
    W. K.S. Chiu
    A. S. Joshi
    K. N. Grew
    [J]. The European Physical Journal Special Topics, 2009, 171 : 159 - 165
  • [35] Lattice Boltzmann modeling of multicomponent diffusion in narrow channels
    Kim, Seung Hyun
    Pitsch, Heinz
    Boyd, Iain D.
    [J]. PHYSICAL REVIEW E, 2009, 79 (01):
  • [36] Three-dimensional microstructural changes in the Ni-YSZ solid oxide fuel cell anode during operation
    Nelson, George J.
    Grew, Kyle N.
    Izzo, John R., Jr.
    Lombardo, Jeffrey J.
    Harris, William M.
    Faes, Antonin
    Hessler-Wyser, Aicha
    Van Herle, Jan
    Wang, Steve
    Chu, Yong S.
    Virkar, Anil V.
    Chiu, Wilson K. S.
    [J]. ACTA MATERIALIA, 2012, 60 (08) : 3491 - 3500
  • [37] Quantitative three-dimensional microstructure of a solid oxide fuel cell cathode
    Wilson, James R.
    Duong, Anh T.
    Gameiro, Marcio
    Chen, Hsun-Yi
    Thornton, Katsuyo
    Mumm, Daniel R.
    Barnett, Scott A.
    [J]. ELECTROCHEMISTRY COMMUNICATIONS, 2009, 11 (05) : 1052 - 1056
  • [38] A three-dimensional model for transient performance of a solid oxide fuel cell
    Ho, Thinh X.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (12) : 6680 - 6688
  • [39] Simulation of multicomponent fluids in complex three-dimensional geometries by the lattice Boltzmann method
    Martys, NS
    Chen, HD
    [J]. PHYSICAL REVIEW E, 1996, 53 (01): : 743 - 750
  • [40] Three dimensional stress analysis of solid oxide fuel cell anode micro structure
    Celik, Selahattin
    Ibrahimoglu, Beycan
    Toros, Serkan
    Mat, Mahmut D.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (33) : 19119 - 19131