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首页> 外文期刊>International Journal of Heat and Mass Transfer >Analysis of catalytic heat transfer for a multi-species gas mixture
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Analysis of catalytic heat transfer for a multi-species gas mixture

机译:多种气体混合物的催化传热分析

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Stagnation point catalytic heat transfer model for a multi-species gas mixture has been developed in this work. The analysis extends the existing tertiary gas mixture catalytic model that assumes thermochemical equilibrium at the edge of a chemically frozen boundary layer. The catalytic heat transfer is computed numerically by solving the governing equations with matrix diagonalization and shooting methods. The present model is applied to compute the heat transfer for both tertiary gas mixture O-O-2-Ar and quinary gas mixture O-O-2-N-N-2-Ar. For the case of the tertiary gas mixture, the present model predicts in the finite-catalytic region, the stagnation-point heat transfer due to recombination is similar with that of the existing models of Goulard and Park. In the highly-catalytic region, however, noticeable differences are observed owing to how the species mass fraction at the wall is computed. Unlike the Goulard approach treating the oxygen and nitrogen as a single recombination efficiency, in the case of the quinary gas mixture, the oxygen recombination efficiency needs to be decoupled with that of nitrogen. The present global model for the tertiary gas mixture is also compared with the Computational Fluid Dynamics (CFD) approach. The results suggest that the present model predicts a similar diffusive stagnation heat transfer to that of the CFD approach, within some acceptable range, when a zero backward reaction rate constant is assumed in the chemical reaction modeling. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在这项工作中,已经开发出了用于多种气体混合物的停滞点催化传热模型。该分析扩展了现有的三次气体混合物催化模型,该模型假定在化学冻结边界层边缘处存在热化学平衡。通过用矩阵对角线化和射击方法求解控制方程,可以对催化传热进行数值计算。本模型用于计算三次混合气体O-O-2-Ar和三次混合气体O-O-2-N-N-2-Ar的热传递。对于第三种气体混合物,本模型预测在有限催化区域中,由于复合而产生的停滞点传热与Goulard和Park的现有模型相似。但是,在高度催化区域,由于如何计算壁处的物质质量分数,观察到了明显的差异。与Goulard方法将氧气和氮气作为单个重组效率进行处理不同,在五元混合气体的情况下,氧气重组效率需要与氮气的分离效率去耦合。还将当前的第三种混合气体全局模型与计算流体动力学(CFD)方法进行了比较。结果表明,当在化学反应模型中假定零后向反应速率常数时,本模型预测的扩散停滞传热与CFD方法的扩散停滞传热相似。 (C)2019 Elsevier Ltd.保留所有权利。

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