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Numerical investigation on mixing behavior of fuels inreacting and non-reacting flow condition of a cavity-strut based scramjet combustor

机译:腔撑式超燃燃烧室燃料不反应和不反应流动状态混合特性的数值研究

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The present study discusses the effects of reacting and non-reacting flow conditions on the flow physics of a scramjet combustor. A cavity based supersonic combustor with a triangular strut is used to analyze the mixing behavior of fuels namely, hydrogen and ethylene, numerically. In this context, the influence of Mach number on static pressure distribution, mixing efficiency and the mole fraction of hydrogen and ethylene is analyzed. Our study reveals that there is a strong interplay between flow conditions viz., reacting and non-reacting and Mach number on flow field characteristics. It has been observed that the ignition delay time is very less for hydrogen fuel as compared to ethylene fuel. Further, the mixing efficiency is found to be maximum at Mach 2.5 and Mach 3.5 for hydrogen and ethylene, respectively for reacting flow conditions. Moreover, it was observed that additional igniters are required to enhance the rate of mixing in case of ethylene since the complete mixing of ethylene and air occurs at higher Mach number. It is seen that the deviation in the static pressure and mixing efficiency for reacting and non-reacting flow increases with the increase in Mach number. Further, this deviation is found relatively higher for hydrogen as compared to ethylene. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本研究讨论了反应和非反应流动条件对超燃冲压燃烧器流动物理学的影响。具有三角形支柱的基于腔的超音速燃烧器用于数值分析燃料(即氢和乙烯)的混合行为。在这种情况下,分析了马赫数对静压分布,混合效率以及氢和乙烯的摩尔分数的影响。我们的研究表明,在流动条件之间存在很强的相互作用,即反应和非反应以及马赫数对流场特性的影响。已经观察到,与乙烯燃料相比,氢燃料的点火延迟时间非常短。此外,发现对于反应流动条件,对于氢气和乙烯,混合效率分别在2.5马赫和3.5马赫时是最大的。此外,已经观察到,在乙烯的情况下,需要额外的点火器来提高混合速率,因为乙烯和空气的完全混合在较高的马赫数下发生。可以看出,随着马赫数的增加,反应和非反应流的静压力和混合效率的偏差也增加了。此外,发现与乙烯相比,氢的偏差相对较高。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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