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首页> 外文期刊>International Journal of Heat and Mass Transfer >Analysis of near wall combustion and pollutant migration after spray impingement
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Analysis of near wall combustion and pollutant migration after spray impingement

机译:喷雾撞击后近壁燃烧和污染物迁移的分析

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Spray impingement has aroused more and more interests in recent years with the increase of injection pressure in internal combustion engines. In this paper, the near wall combustion after fuel spray impingement is studied based on an updated film development model and experiment in constant volume vessel. Relationship between spray injection and flame development under different ambient temperature is analyzed as well as the near wall distribution of combustion products. In the first part, a mathematical model that considered the effects of surface tension on spray impingement is built for better prediction of film development. Reasonable results are obtained at room temperature spray impingement case, and the split distribution of film depth is also well captured. In the second part, flame development in the near wall region is investigated based on the proposed numerical model and experiments. The result shows that the flame becomes circumferentially nonuniformed at lower ambient temperature (723 K) and the evolution of downstream flame become sensitive to the wall temperature. At lower ambient temperature (723 K), increasing wall temperature could enlarge the high temperature zone, which is helpful to accelerate the film evaporation and soot oxidation. At higher ambient temperature condition, the spray impact angle should be reduced to create more concentrated combustion (stronger stratification), which could improve the combustion efficiency in the near wall region. (C) 2019 Elsevier Ltd. All rights reserved.
机译:近年来,随着内燃机中喷射压力的增加,喷雾冲击引起了越来越多的兴趣。本文基于更新的薄膜显影模型并在恒容容器中进行了实验,研究了燃油喷射撞击后的近壁燃烧。分析了在不同环境温度下喷雾喷射与火焰发展之间的关系以及燃烧产物的近壁分布。在第一部分中,建立了一个数学模型,该模型考虑了表面张力对喷雾撞击的影响,以便更好地预测膜的显影。在室温下喷雾撞击的情况下可以获得合理的结果,并且也能很好地捕获膜深度的分裂分布。在第二部分中,基于所提出的数值模型和实验研究了近壁区域的火焰发展。结果表明,在较低的环境温度(723 K)下,火焰在圆周上变得不均匀,并且下游火焰的演变对壁温变得敏感。在较低的环境温度(723 K)下,壁温的升高可能会扩大高温区域,这有助于加速薄膜的蒸发和烟尘的氧化。在较高的环境温度条件下,应减小喷雾冲击角以产生更集中的燃烧(更强的分层),这可以提高近壁区域的燃烧效率。 (C)2019 Elsevier Ltd.保留所有权利。

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