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首页> 外文期刊>Experimental Thermal and Fluid Science: International Journal of Experimental Heat Transfer, Thermodynamics, and Fluid Mechanics >The effect of an electric field on the shape of co-flowing and candle-type methane-air flames
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The effect of an electric field on the shape of co-flowing and candle-type methane-air flames

机译:电场对同流和烛型甲烷空气火焰形状的影响

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The effects, which an electric held exerts on flames, have been observed and reported in the literature for a long time. Burning velocity, dame stability flame shape, flame luminosity, extinction limit, and soot formation, are among the effects that have been observed. Most of the studies in this field were experimental observations. There is fairly limited information in the literature on numerical studies in the area of electric field and flame interaction. Therefore, our fundamental understanding of the process and our ability to use electric field as a means to control the combustion process, are restricted, In the present work, co-flowing diffusion methane/air flames and candle-type methane/air flames under the electric field effect have been observed experimentally. A numerical model, which considers the more important physical and chemical phenomena associated with the flame-field interaction process, has been developed to explain the experimental observations. The model employs a two-dimensional cylindrical coordinate system and assumes axial symmetry. A simplified chemical reaction scheme for a methane-air mixture, which contains 19 chemical species and 31 reactions is employed. It combines existing methane oxidation mechanisms with a series of chemiionization, ion-molecule, and dissociative-recombination reactions, which are important for the ionic species. The mass, momentum, species and energy conservation equations are solved numerically by an integrated version of the PHOENICS and CHEMKIN;IN computer codes. It is concluded that the effects of an electric field on the flame behavior are mainly due to ionic wind effects. (C) 2000 Elsevier Science Inc. All rights reserved. [References: 11]
机译:长期以来,在文献中已经观察到并报道了电保持在火焰上的效果。燃烧速度,角质稳定火焰形状,火焰光度,消光极限和烟灰形成等已被观察到。该领域的大多数研究都是实验观察。关于电场和火焰相互作用领域中数值研究的文献资料非常有限。因此,我们对过程的基本理解以及我们使用电场作为控制燃烧过程的手段的能力受到限制。在当前工作中,在此条件下,并流扩散甲烷/空气火焰和蜡烛型甲烷/空气火焰实验观察到电场效应。建立了一个数值模型,该模型考虑了与火焰场相互作用过程相关的更重要的物理和化学现象,以解释实验观察结果。该模型采用二维圆柱坐标系并假定轴向对称。采用了简化的甲烷-空气混合物化学反应方案,该方案包含19种化学物质和31种反应。它结合了现有的甲烷氧化机制和一系列化学离解,离子分子和解离重组反应,这对于离子物种而言非常重要。质量,动量,种类和能量守恒方程通过PHOENICS和CHEMKIN; IN计算机代码的集成版本进行数值求解。可以得出结论,电场对火焰行为的影响主要归因于离子风效应。 (C)2000 Elsevier Science Inc.保留所有权利。 [参考:11]

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