首页> 外文期刊>Frontiers in Heat and Mass Transfer >EFFECT OF WALL THERMAL CONDUCTIVITY ON MICRO-SCALE COMBUSTION CHARACTERISTICS OF HYDROGEN-AIR MIXTURES WITH DETAILED CHEMICAL KINETIC MECHANISMS IN Pt/?3-Al2O3 CATALYTIC MICRO-COMBUSTORS
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EFFECT OF WALL THERMAL CONDUCTIVITY ON MICRO-SCALE COMBUSTION CHARACTERISTICS OF HYDROGEN-AIR MIXTURES WITH DETAILED CHEMICAL KINETIC MECHANISMS IN Pt/?3-Al2O3 CATALYTIC MICRO-COMBUSTORS

机译:壁热导率对Pt /α3-Al2O3催化微燃烧器中氢-空气混合物微尺度燃烧特性及详细的化学动力学机理的影响

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To understand the effect of different thermal conductivities on catalytic combustion characteristics, effect of thermal conductivity on micro-combustion characteristics of hydrogen-air mixtures in Pt/γ-Al2O3 catalytic micro-combustors were investigated numerically with detailed chemical kinetics mechanisms. Three kinds of wall materials (100, 7.5, and 0.5 W/m·K) were selected to investigate the effect of heat conduction on the catalytic combustion. The simulation results indicate that the catalytic reaction restrains the gas phase reaction in Pt/γ-Al2O3 catalytic micro-combustors. The gas phase reaction restrained by Pt/γ-Al2O3 catalysts is sensitive to thermal boundary condition at the wall. For most conditions, the gas phase reaction cannot be ignored in Pt/γ-Al2O3 catalytic micro-combustors. For low thermal conductivity, the higher temperature gradient on the wall will promote the gas phase reaction shift upstream; high temperature gradient exists on the wall, and the hot spot can cause the material to melt or degrade the catalyst. Due to the gas phase reaction is ignited and sustained in micro-combustors by the heat from the catalytic reaction, the effect of thermal conductivity on micro-scale combustion characteristics is not as obvious as it is in micro-combustors without Pt/γ-Al2O3 catalysts.
机译:为了解不同的热导率对催化燃烧特性的影响,通过详细的化学动力学机理,数值研究了热导率对Pt /γ-Al2O3催化微燃烧器中氢-空气混合物微燃烧特性的影响。选择三种墙体材料(100、7.5和0.5 W / m·K)来研究热传导对催化燃烧的影响。仿真结果表明,催化反应抑制了Pt /γ-Al2O3催化微燃烧器的气相反应。受Pt /γ-Al2O3催化剂限制的气相反应对壁的热边界条件很敏感。在大多数情况下,Pt /γ-Al2O3催化微燃烧器中的气相反应不可忽略。对于低热导率,壁上较高的温度梯度将促进气相反应向上游移动;壁上存在高温梯度,热点会导致材料熔化或降解催化剂。由于气相燃烧是由催化反应产生的热量点燃并维持在微型燃烧器中,因此热导率对微观燃烧特性的影响不像没有Pt /γ-Al2O3的微型燃烧器那样明显。催化剂。

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