2D numerical simulation of passive autocatalytic recombiner for hydrogen mitigation

被引:0
作者
B. Gera
P. K. Sharma
R. K. Singh
机构
[1] Bhabha Atomic Research Centre,Reactor Safety Division
来源
Heat and Mass Transfer | 2012年 / 48卷
关键词
Computational Fluid Dynamic; Hydrogen Concentration; Computational Fluid Dynamic Model; Computational Fluid Dynamic Code; Computational Fluid Dynamic Result;
D O I
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中图分类号
学科分类号
摘要
Resolving hydrogen related safety issues, pertaining to nuclear reactor safety has been an important area of research world over for the past decade. The studies on hydrogen transport behavior and development of hydrogen mitigation systems are still being pursued actively in various research labs, including Bhabha Atomic Research Centre (BARC), in India. The passive autocatalytic recombiner (PAR) is one of such hydrogen mitigating device consisting of catalyst surfaces arranged in an open-ended enclosure. In the plate type recombiner design sheets made of stainless steel and coated with platinum catalyst material are arranged in parallel inside a flow channel. The catalyst elements are exposed to a constant flow of a mixture of air, hydrogen and steam, a catalytic reaction occurs spontaneously at the catalyst surfaces and the heat of reaction produces natural convection flow through the enclosure. Numerical simulation and experiments are required for an in-depth knowledge of such plate type PAR. Specific finite volume based in-house 2D computational fluid dynamics (CFD) code has been developed to model and analyse the working of these recombiners and has been used to simulate one literature quoted experiment. The validation results were in good agreement against literature quoted German REKO experiments. Parametric study has been performed for particular recombiner geometry for various inlet conditions. Salient features of the simplified CFD model developed at BARC and results of the present model calculations are presented in this paper.
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页码:591 / 598
页数:7
相关论文
共 30 条
[1]  
Heitsch M(2000)Fluid dynamic analysis of a catalytic recombiner to remove hydrogen Nucl Eng Des 201 1-10
[2]  
Reinecke EA(2004)Studies on innovative hydrogen recombiners as safety devices in the containments of light water reactors Nucl Eng Des 230 49-59
[3]  
Tragsdorf IM(2002)An experimental and numerical investigation of homogeneous ignition in catalytically stabilized combustion of H Combust Flame 128 340-368
[4]  
Gierling K(2004)/air mixtures over platinum Clean Air 5 21-44
[5]  
Appel C(2010)Catalytic combustion of hydrogen–air mixtures over platinum: validation of hetero/homogeneous chemical reaction schemes Prog Nucl Energy 52 136-147
[6]  
Mantzaras J(1982)Open issues in the applicability of recombiner experiments and modeling to reactor simulations Combust Flame 45 171-190
[7]  
Schaeren R(2010)Catalyzed combustion of H Nucl Eng Des 241 1746-1757
[8]  
Bombach R(2010)/air mixtures in a flat plate boundary layer: II. Numerical model CFD Lett 2 123-136
[9]  
Inauen A(undefined)Simulation of hydrogen mitigation in catalytic recombiner: part-I: surface chemistry modeling undefined undefined undefined-undefined
[10]  
Kaeppeli B(undefined)Numerical study of passive catalytic recombiner for hydrogen mitigation undefined undefined undefined-undefined