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Two-dimensional Simulation for Hydrogen/Air Combustion in a Monolith Reactor 被引量:1

Two-dimensional Simulation for Hydrogen/Air Combustion in a Monolith Reactor
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摘要 Recent studies on hydrogen combustion were reviewed briefly. The laminar flow and combustion of premixed hydrogen/air mixture in a cylindrical channel of a monolith reactor with and without catalytic wall was numerically modeled by solving two-dimensional (2-D) Navier-Stokes (N-S) equations, energy equation, and species equations. Eight gas species and twenty reversible gas reactions were considered. The control volume technique and the SIMPLE algorithm were used to solve the partial differential equations. The streamlines of the flow field, temperature contours, the entrance length, and the concentration fields were computed. It is found that the entrance zone plays an important role on flow and temperature as well as species distribution. Therefore, the flow cannot be assumed either as fully developed or as plug flow. There is a small but strong thermal expansion zone between the wall and the entrance. Both diffusion and convection affect the heat and mass transfer processes in the expansion zone. Thus the equations of momentum, energy and species conservations should be used to describe hydrogen/air combustion in the monolith reactor. The hot-spot location and concentration field of the homogeneous combustion is strongly influenced by the inlet velocity and temperature, and the equivalence ratio. The catalytic combustion of premixed hydrogen/air mixture over platinum catalyst-coated wall in a cylindrical channel was also simulated. Recent studies on hydrogen combustion were reviewed briefly. The laminar flow and combustion of premixed hydrogen/air mixture in a cylindrical channel of a monolith reactor with and without catalytic wall was numerically modeled by solving two-dimensional (2-D) Navier-Stokes (N-S) equations, energy equation, and species equations. Eight gas species and twenty reversible gas reactions were considered. The control volume technique and the SIMPLE algorithm were used to solve the partial differential equations. The streamlines of the flow field, temperature contours, the entrance length, and the concentration fields were computed. It is found that the entrance zone plays an important role on flow and temperature as well as species distribution. Therefore, the flow cannot be assumed either as fully developed or as plug flow. There is a small but strong thermal expansion zone between the wall and the entrance. Both diffusion and convection affect the heat and mass transfer processes in the expansion zone. Thus the equations of momentum, energy and species conservations should be used to describe hydrogen/air combustion in the monolith reactor. The hot-spot location and concentration field of the homogeneous combustion is strongly influenced by the inlet velocity and temperature, and the equivalence ratio. The catalytic combustion of premixed hydrogen/air mixture over platinum catalyst-coated wall in a cylindrical channel was also simulated.
出处 《过程工程学报》 EI CAS CSCD 北大核心 2005年第1期10-17,共8页 The Chinese Journal of Process Engineering
基金 Foundation item: Partially supported by the Key Laboratory of Multiphase Reaction of the Chinese Academy of Sciences State Key of Coal Conversion of the Chinese Academy of Sciences
关键词 蜂窝状催化剂 二维模拟 空气燃烧 反应器 氢气 micro-reactor monolith combustion catalysis hydrogen simulation
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  • 1Appel C, Mantzaras J, Schaeren R, et al. An Experimental and Numerical Investigation of Homogeneous Ignition in Catalytically Stabilized Combustion of Hydrogen/Air Mixtures over Platinum [J]. Combust. Flame, 2002, 128: 340-368.
  • 2Coltrin M E, Kee R J, Rupley F M. Surface CHEMKIN A Fortran Package for Analyzing Heterogeneous Chemical Kinetics at the Solid Surface=Gas Phase Interface [R]. Sandia Report SAND90-8003C. California: Sandian National Lab., Albuquerque, New Mexico 87185 and Livermore, 1996.
  • 3Dogwiler U, Benz P, Mantzaras J. Two-dimensional Modeling for Catalytically Stabilized Combustion of a Lean Methane=Air Mixture with Elementary Homogeneous and Heterogeneous Chemical Reactions [J]. Combust. Flame, 1999, 116(1-2): 243-258.
  • 4Fairweather M, Woolley R M. First-order Conditional Moment Closure Modeling of Turbulent, Nonpremixed Hydrogen Flames [J]. Combust. Flame, 2003, 133: 393-405.
  • 5Frouzakis C E, Tomboulides A G, Lee J, et al. From Diffusion to Premixed Flames in an H2/Air Opposed-jet Burner: The Role of Edge Flames [J]. Combust. Flame, 2002, 130: 171-184.
  • 6Yakhnin V Z, Menzinger M. Moving Hot Spots and Resonance in Adiabatic Packed-bed Reactors [J]. AIChE J., 1998, 44(5): 1222-1225.
  • 7Jones W P. Large Eddy Simulation of Turbulent Combustion Processes [J]. Comput. Phys. Commun., 2002, 147: 533-537.
  • 8Kee R J, Rupley F M, Miller J A. The CHEMKIN Thermodynamic Database [R]. Sandia Report SAND87-8215B. California: Sandian National Lab., Albuquerque, New Mexico 87185 and Livermore, 1996.
  • 9Konnov A A, Colson G, De Ruyck J. No Formation Rates for Hydrogen Combustion in Stirred Reactors [J]. Fuel, 2001, 80: 49-65.
  • 10Hickman D A, Schmidt L D. Steps in CH4 Oxidation on Pt and Rh Surfaces: High-temperature Reactor Simulation [J]. AIChE J., 1993, 39(7): 1164-1177.

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