A comparative study on the Lattice Boltzmann Method and the VoF-Continuum method for oxygen transport in the anodic porous transport layer of an electrolyzer

被引:0
|
作者
Sourya, Dasika Prabhat [1 ]
Gurugubelli, Pardha S. [2 ]
Bhaskaran, Supriya [3 ]
Vorhauer-Huget, Nicole [3 ]
Tsotsas, Evangelos [3 ]
Surasani, Vikranth Kumar [1 ]
机构
[1] Department of Chemical Engineering, Birla Institute of Technology and Sciences, Pilani- Hyderabad Campus, Shameerpet, Hyderabad,500078, India
[2] Department of Mechanical Engineering, Birla Institute of Technology and Sciences, Pilani-Hyderabad Campus, Shameerpet, Hyderabad,500078, India
[3] Institute of Process Engineering, Otto-von-Guericke-Universität Magdeburg, Universitätsplatz 2, Magdeburg,39106, Germany
关键词
Microfluidics - Nafion membranes - Negative temperature coefficient - Positive temperature coefficient;
D O I
10.1016/j.ijhydene.2024.10.340
中图分类号
学科分类号
摘要
The optimization of Polymer Electrolyte Membrane (PEM) electrolyzers necessitates an intimate knowledge of the oxygen flows within the anodic porous transport layers (PTLs) to determine any possible reduction in performance. In this field, as experimental studies are cumbersome and expensive, numerical modeling has arisen as a viable alternative for studying the oxygen transport within the Anodic PTLs of a PEM electrolyzer. Amongst the various numerical modeling techniques, the Lattice Boltzmann Method (LBM) is gaining prominence for its effectiveness in analyzing fluid transport within porous media due to its mesoscopic nature and ease of implementation. This study utilizes the Shan-Chen LBM methodology to model the flow of oxygen within the Anodic PTL of a PEM electrolyzer and compares it against the Volume-of-Fluid-based Continuum Model. The results show that LBM can not only replicate the experimental studies accurately, but can also maintain its high accuracy at progressively shrinking length scales of PTLs, even at length scales where the VoF-based Continuum Model would run into accuracy issues. The high accuracy of the LBM model, combined with the simplicity of the LB algorithm makes LBM a powerful technique for simulating the microfluidic flows such as the flow of oxygen within the Anodic PTL of a PEM electrolyzer. © 2024 Hydrogen Energy Publications LLC
引用
收藏
页码:1091 / 1098
相关论文
共 50 条
  • [41] Mechanism of aluminium and oxygen ions transport in the barrier layer of porous anodic alumina films
    G. Patermarakis
    J. Diakonikolaou
    Journal of Solid State Electrochemistry, 2012, 16 : 2921 - 2939
  • [42] Coupling of first collision source method with Lattice Boltzmann Method for the solution of neutron transport equation
    Agarwal, Gaurav
    Singh, Suneet
    ANNALS OF NUCLEAR ENERGY, 2022, 175
  • [43] Three-Dimensional Lattice Boltzmann Simulation of Liquid Water Transport in Porous Layer of PEMFC
    Han, Bo
    Ni, Meng
    Meng, Hua
    ENTROPY, 2016, 18 (01):
  • [44] Comparative study of boundary treatment schemes in lattice Boltzmann method
    Adachi, Hijiri
    Fukui, Tomohiro
    Kawaguchi, Misa
    JOURNAL OF FLUID SCIENCE AND TECHNOLOGY, 2024, 19 (03):
  • [45] Numerical Predicting of Liquid Water Transport inside Gas Diffusion Layer for PEMFC Using Lattice Boltzmann Method
    Satjaritanun, P.
    Shimpalee, S.
    Weidner, J. W.
    Hirano, S.
    Lu, Z.
    Shum, A.
    Zenyuk, I. V.
    Ogawa, S.
    Litster, S. E.
    POLYMER ELECTROLYTE FUEL CELLS 17 (PEFC 17), 2017, 80 (08): : 187 - 195
  • [46] Liquid water transport phenomena in the porous transport layer of proton exchange membrane fuel cell based on lattice Boltzmann simulation
    Jiang, Ziheng
    Yang, Guogang
    Shen, Qiuwan
    Li, Shian
    Liao, Jiadong
    Yang, Xiaoxing
    Sun, Juncai
    MATERIALS TODAY COMMUNICATIONS, 2023, 37
  • [47] Lattice Boltzmann and Discrete Ordinates Methods for Phonon Transport Modeling: A Comparative Study
    Donmezer, Fatma Nazli
    Singh, Dhruv
    James, William
    Christensen, Adam
    Graham, Samuel
    Murthy, Jayathi Y.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2011, VOL 10, PTS A AND B, 2012, : 333 - 343
  • [48] The Research and Development of the Titanium Nitrides TiNx Sublayer, Formed on the Surface of the Anodic Porous Transport Layer of PEM Water Electrolyzer
    Butrim, S. I.
    Solovyev, M. A.
    Pushkareva, I. V.
    Tishkin, V. V.
    Simkin, D. A.
    Shapir, B. L.
    Kozlova, M. V.
    Alekseeva, O. K.
    Kukueva, E. V.
    Pushkarev, A. S.
    Fateev, V. N.
    NANOBIOTECHNOLOGY REPORTS, 2023, 18 (SUPPL 2) : S367 - S374
  • [49] The Research and Development of the Titanium Nitrides TiNx Sublayer, Formed on the Surface of the Anodic Porous Transport Layer of PEM Water Electrolyzer
    S. I. Butrim
    M. A. Solovyev
    I. V. Pushkareva
    V. V. Tishkin
    D. A. Simkin
    B. L. Shapir
    M. V. Kozlova
    O. K. Alekseeva
    E. V. Kukueva
    A. S. Pushkarev
    V. N. Fateev
    Nanobiotechnology Reports, 2023, 18 : S367 - S374
  • [50] Lattice Boltzmann method for simulation of time-dependent neutral particle transport
    Ya-Hui Wang
    Li-Ming Yan
    Bang-Yang Xia
    Yu Ma
    Nuclear Science and Techniques, 2017, 28