An open-source library for the numerical modeling of mass-transfer in solid oxide fuel cells

被引:38
|
作者
Novaresio, Valerio [1 ]
Garcia-Camprubi, Maria [2 ]
Izquierdo, Salvador [1 ]
Asinari, Pietro [1 ]
Fueyo, Norberto [2 ]
机构
[1] Politecn Torino, Dipartimento Energet, I-1019 Turin, Italy
[2] Univ Zaragoza, Area Mecan Fluidos LITEC, Zaragoza 50018, Spain
关键词
Solid oxide fuel cell; Multicomponent; Mass-transfer; Porous media; OpenFoam (R); LOW-PERMEABILITY GRAPHITE; DUSTY-GAS; ANODE; SOFC; PERFORMANCE; TRANSPORT; DIFFUSION; FLOW; INTERDIFFUSION; PREDICTION;
D O I
10.1016/j.cpc.2011.08.003
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
The generation of direct current electricity using solid oxide fuel cells (SOFCs) involves several interplaying transport phenomena. Their simulation is crucial for the design and optimization of reliable and competitive equipment, and for the eventual market deployment of this technology. An open-source library for the computational modeling of mass-transport phenomena in SOFCs is presented in this article. It includes several multicomponent mass-transport models (i.e. Fickian, Stefan-Maxwell and Dusty Gas Model), which can be applied both within porous media and in porosity-free domains, and several diffusivity models for gases. The library has been developed for its use with OpenFOAM (R), a widespread open-source code for fluid and continuum mechanics. The library can be used to model any fluid flow configuration involving multicomponent transport phenomena and it is validated in this paper against the analytical solution of one-dimensional test cases. In addition, it is applied for the simulation of a real SOFC and further validated using experimental data. Program summary Program title: multiSpeciesTransportModels Catalogue identifier: AEKB_v1_0 Program summary URL: http://cpc.cs.qub.ac.uk/summaries/AEKB_v1_0.html Program obtainable from: CPC Program Library, Queen's University, Belfast, N. Ireland Licensing provisions: GNU General Public License No. of lines in distributed program, including test data, etc.: 18 140 No. of bytes in distributed program, including test data, etc.: 64 285 Distribution format: tar.gz Programming language:: C++ Computer: Any x86 (the instructions reported in the paper consider only the 64 bit case for the sake of simplicity) Operating system: Generic Linux (the instructions reported in the paper consider only the open-source Ubuntu distribution for the sake of simplicity) Classification: 12 External routines: OpenFOAM (R) (version 1.6-ext) (http://www.extend-project.de) Nature of problem: This software provides a library of models for the simulation of the steady state mass and momentum transport in a multi-species gas mixture, possibly in a porous medium. The software is particularly designed to be used as the mass-transport library for the modeling of solid oxide fuel cells (SOFC). When supplemented with other sub-models, such as thermal and charge-transport ones, it allows the prediction of the cell polarization curve and hence the cell performance. Solution method: Standard finite volume method (FVM) is used for solving all the conservation equations. The pressure-velocity coupling is solved using the SIMPLE algorithm (possibly adding a porous drag term if required). The mass transport can be calculated using different alternative models, namely Fick, Maxwell-Stefan or dusty gas model. The code adopts a segregated method to solve the resulting linear system of equations. The different regions of the SOFC, namely gas channels, electrodes and electrolyte, are solved independently, and coupled through boundary conditions. Restrictions: When extremely large species fluxes are considered, current implementation of the Neumann and Robin boundary conditions do not avoid negative values of molar and/or mass fractions, which finally end up with numerical instability. However this never happened in the documented runs. Eventually these boundary conditions could be reformulated to become more robust. Running time: From seconds to hours depending on the mesh size and number of species. For example, on a 64 bit machine with Intel Core Duo T8300 and 3 GBytes of RAM, the provided test run requires less than 1 second. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:125 / 146
页数:22
相关论文
共 50 条
  • [21] The effect of fuel utilization on heat and mass transfer within solid oxide fuel cells examined by three-dimensional numerical simulations
    Lee, Sanghyeok
    Kim, Hyoungchul
    Yoon, Kyung Joong
    Son, Ji-Won
    Lee, Jong-Ho
    Kim, Byung-Kook
    Choi, Wonjoon
    Hong, Jongsup
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 97 : 77 - 93
  • [22] Modeling radiation heat transfer with participating media in solid oxide fuel cells
    VanderSteen, J. D. J.
    Pharoah, J. G.
    JOURNAL OF FUEL CELL SCIENCE AND TECHNOLOGY, 2006, 3 (01): : 62 - 67
  • [23] EEGraph: An open-source Python']Python library for modeling electroencephalograms using graphs
    Maitin, Ana M.
    Nogales, Alberto
    Chazarra, Pedro
    Jose Garcia-Tejedor, Alvaro
    NEUROCOMPUTING, 2023, 519 : 127 - 134
  • [24] Structural informatics, modeling, and design with an open-source Molecular Software Library (MSL)
    Kulp, Daniel W.
    Subramaniam, Sabareesh
    Donald, Jason E.
    Hannigan, Brett T.
    Mueller, Benjamin K.
    Grigoryan, Gevorg
    Senes, Alessandro
    JOURNAL OF COMPUTATIONAL CHEMISTRY, 2012, 33 (20) : 1645 - 1661
  • [25] Tridimensional modeling of solid oxide fuel cells
    Andrade, Samuel Tadeu de Paula
    Bortolus, Marcos Vinicius
    Brant, Marcia Caldeira
    Domingues, Rosana Zacarias
    Matencio, Tulio
    MATERIA-RIO DE JANEIRO, 2008, 13 (03): : 462 - 479
  • [26] Modeling of solid-oxide fuel cells
    Janardhanan, Vinod M.
    Deutschmann, Olaf
    ZEITSCHRIFT FUR PHYSIKALISCHE CHEMIE-INTERNATIONAL JOURNAL OF RESEARCH IN PHYSICAL CHEMISTRY & CHEMICAL PHYSICS, 2007, 221 (04): : 443 - 478
  • [27] MASS-TRANSFER FROM PHYCOMYCES IN THE AVOIDANCE AND ANEMOTROPIC RESPONSES - NUMERICAL MODELING
    PELLEGRINO, JJ
    SANI, RL
    GAMOW, RI
    JOURNAL OF THEORETICAL BIOLOGY, 1983, 105 (01) : 77 - 90
  • [28] The development of heat transfer and gas flow modeling in the solid oxide fuel cells (SOFCs)
    Yuan, JL
    Rokni, M
    Sundén, B
    SOLID OXIDE FUEL CELLS (SOFC VI), 1999, 99 (19): : 1099 - 1108
  • [29] Numerical thermomechanical modelling of solid oxide fuel cells
    Peksen, Murat
    PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2015, 48 : 1 - 20
  • [30] Open-Source vapor compression library (VCLib): Heat pump modeling for education and research
    Vering, Christian
    Engelpracht, Mirko
    Goebel, Stephan
    Hoseinpoori, Sina
    Wuellhorst, Fabian
    Schwenzer, Christian
    Rademacher, Matti
    Hinrichs, Sven
    Chandra, Friederike
    Mehrfeld, Philipp
    Mueller, Dirk
    COMPUTER APPLICATIONS IN ENGINEERING EDUCATION, 2022, 30 (05) : 1498 - 1509