A New Approach for Modeling the Thermal Behavior of Methane Catalytic Partial Oxidation Monolith Reactors

被引:0
|
作者
Cordiner, S. [1 ]
de Simone, G. [1 ]
机构
[1] Univ Roma Tor Vergata, Dept Mech Engn, I-00133 Rome, Italy
来源
关键词
SYNTHESIS GAS; FIXED-BED; KINETICS; PHASE;
D O I
10.1115/1.3120272
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
A comprehensive computational model for the design of methane catalytic partial oxidation monolith reactors for hydrogen production has been developed and tested with respect to available experimental data. Allowing a simplified description of the heat release mechanism associated with the reforming process, the model represents a useful tool to address performances and durability issues in the design process of full scale catalytic reformers. The characteristic temperature peak along the catalyst channels, which is experimentally observed as a result of the competitive action of fuel complete oxidation and steam reforming is, in fact, a fundamental parameter to be controlled during the design process and is a complex function of catalyst formulation, mixture composition, and actual operating conditions. To address this issue in the present paper the heat release law mechanism has been studied with a new approach named heat release curves model (HRCM), which decouples the thermofluid dynamic analysis of real geometries from the modeling of heterogeneous chemistry. The model uses heat release curves extrapolated from detailed heterogeneous chemistry calculation or experimental measurements as the basis of a simplified, although still predictive, evaluation of the heat released, which allows a substantial reduction in computational costs. Validation of HRCM model (including heat release profiles approximation) with respect to more detailed simulations and available experimental data shows very good predictive capabilities with a maximum error lower than the 4% over a wide number of analyzed cases (accounting for several O/C ratios, inlet velocities, channel dimensions, and mean temperatures). Although presented for natural gas reforming the present model may be easily extended to different fuels. [DOI: 10.1115/1.3120272]
引用
收藏
页码:0110201 / 01102011
页数:11
相关论文
共 50 条
  • [21] Catalytic partial oxidation of methane to methanol
    Choi, WJ
    Park, JY
    Kim, MS
    Park, HS
    Hahm, HS
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2001, 7 (04) : 187 - 192
  • [22] Catalytic partial oxidation of methane to formaldehyde
    A. V. de Vekki
    S. T. Marakaev
    Russian Journal of Applied Chemistry, 2009, 82 (4) : 521 - 536
  • [23] CATALYTIC STUDIES OF METHANE PARTIAL OXIDATION
    WALKER, GS
    LAPSZEWICZ, JA
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1994, 207 : 54 - CATL
  • [24] Catalytic partial oxidation of methane to formaldehyde
    de Vekki, A. V.
    Marakaev, S. T.
    RUSSIAN JOURNAL OF APPLIED CHEMISTRY, 2009, 82 (04) : 521 - 536
  • [25] Microreactor for the Catalytic Partial Oxidation of Methane
    Widodo Wahyu Puwanto
    Yuswan Muharam
    Journal of Natural Gas Chemistry, 2006, (04) : 271 - 274
  • [26] CATALYTIC REACTIONS OF PARTIAL METHANE OXIDATION
    KRYLOV, OV
    CATALYSIS TODAY, 1993, 18 (03) : 209 - 302
  • [27] Mathematical modeling of monolith reactors for photocatalytic oxidation of air contaminants
    Nicolella, C
    Rovatti, M
    CHEMICAL ENGINEERING JOURNAL, 1998, 69 (02) : 119 - 126
  • [28] Micromachined reactors for catalytic partial oxidation reactions
    Srinivasan, R
    Hsing, IM
    Berger, PE
    Jensen, KF
    Firebaugh, SL
    Schmidt, MA
    Harold, MP
    Lerou, JJ
    Ryley, JF
    AICHE JOURNAL, 1997, 43 (11) : 3059 - 3069
  • [29] Comparative study of the catalytic partial oxidation of methane to synthesis gas in fixed-bed and fluidized-bed membrane reactors - Part I: A modeling approach
    Ostrowski, T
    Giroir-Fendler, A
    Mirodatos, C
    Mleczko, L
    CATALYSIS TODAY, 1998, 40 (2-3) : 181 - 190
  • [30] Transient experiments and modeling of the catalytic combustion of methane in a monolith reactor
    Hayes, RE
    Kolaczkowski, ST
    Thomas, WJ
    Titiloye, J
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1996, 35 (02) : 406 - 414