Multidimensional Modeling of Steam-Methane-Reforming-Based Fuel Processor for Hydrogen Production

被引:5
|
作者
Oh, Kyeongmin [1 ]
Kim, Dowan [1 ]
Lim, Kisung [1 ]
Ju, Hyunchul [1 ]
机构
[1] Inha Univ, Dept Mech Engn, 100 Inha Ro, Incheon 22212, South Korea
关键词
Fuel processor; hydrogen production; steam-reforming water gas shift; preferential oxidation; numerical simulation; WATER-GAS SHIFT; SIMULATION;
D O I
10.1080/15361055.2020.1712995
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
W present a three-dimensional (3-D) steam-methane-reforming (SMR) model consisting of a steam-reforming (SR) reactor, water gas shift reactor, preferential oxidation reactor, catalytic burner, heat exchangers, and balance of plant components. The mass and energy balance equations are derived considering the kinetic expressions of various SMR reactions and implemented in the commercial computational fluid dynamics software program Fluent by employing user-defined functions. The 3-D SMR model is then applied to a 10-kW SR reformer geometry and simulated for comparison with in-house experimental data. The simulation results and the experimental data show good agreement, and the model accurately captures the experimental exhaust gas compositions and the reactor outlet temperatures. The proposed 3-D simulation tool for predicting various transport and chemical processes is highly desirable from the viewpoint of design and optimization of full-scale SMR-based fuel processors.
引用
收藏
页码:415 / 423
页数:9
相关论文
共 50 条
  • [21] Plasma catalytic steam methane reforming for distributed hydrogen production
    Zhu, Xiaobing
    Liu, Xiaoyu
    Lian, Hao-Yu
    Liu, Jing-Lin
    Li, Xiao-Song
    CATALYSIS TODAY, 2019, 337 : 69 - 75
  • [22] Bench-Scale Steam Reforming of Methane for Hydrogen Production
    Park, Hae-Gu
    Han, Sang-Young
    Jun, Ki-Won
    Woo, Yesol
    Park, Myung-June
    Kim, Seok Ki
    CATALYSTS, 2019, 9 (07)
  • [23] The obtaining process of the hydrogen needed in a fuel cell by steam methane reforming
    Koncsag, CI
    Nita, I
    Mandalopol, D
    REVISTA DE CHIMIE, 2004, 55 (04): : 279 - 283
  • [24] Steam reforming of glycerol for hydrogen production: Modeling study
    Silva, Joel M.
    Soria, M. A.
    Madeira, Luis M.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2016, 41 (03) : 1408 - 1418
  • [26] Catalysts for hydrogen production in a multifuel processor by methanol, dimethyl ether and bioethanol steam reforming for fuel cell applications
    Snytnikov, P. V.
    Badmaev, S. D.
    Volkova, G. G.
    Potemkin, D. I.
    Zyryanova, M. M.
    Belyaev, V. D.
    Sobyanin, V. A.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (21) : 16388 - 16396
  • [27] FUEL 123-Sugar steam reforming for hydrogen production
    Adhikari, Sushil
    Fernando, Sandun
    Haryanto, Agus
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 232
  • [28] FUEL 68-Bimetallic carbides as catalysts for hydrogen (syngas) production from Dry Reforming and Steam Reforming of methane and methanol
    Shao, Huifang
    Kugler, Edwin L.
    Dadyburjor, Dady B.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 232
  • [29] Evaluation of the economic impact of hydrogen production by methane decomposition with steam reforming of methane process
    Mondal, Kartick C.
    Chandran, S. Ramesh
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (18) : 9670 - 9674
  • [30] Simulation modelling of hydrogen production from steam reforming of methane and biogas
    Kumar, Ravindra
    Kumar, Anil
    Pal, Amit
    FUEL, 2024, 362