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Soot surface reactivity during surface growth and oxidation in laminar diffusion flames

机译:层流扩散火焰中表面生长和氧化过程中的烟尘表面反应性

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Soot surface reactivity is numerically studied in laminar ethylene/air and methane/air coflow diffusion flames. Surface reactions are found to be important for many processes involved in soot formation, including surface growth and oxidation which contribute significantly to soot yield. It has recently been shown that soot particle reactivity changes as particles age during both surface growth (Veshkini et al., 2014) and oxidation (Khosousi and Dworkin, 2015). A newly developed surface character model simultaneously accounts for soot surface reactivity in surface growth and oxidation by considering soot ageing and its effects on the particle surface, reconciling the aforementioned works. This new development eliminates tuning from case to case of one parameter used in soot numerical simulations, alpha, the portion of soot surface sites available for reaction, which is implemented as a function of temperature and residence time (particle history). Thus, the new model reconciles the quantification of the evolving soot surface character for both growth and oxidation. The model is shown to be uniquely capable of predicting soot concentrations and smoke emissions within experimental uncertainty in a wide range of laminar diffusion sooting flames, without any variation of model parameters. (C) 2015 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在层状乙烯/空气和甲烷/空气共流扩散火焰中对烟灰表面反应性进行了数值研究。发现表面反应对于烟灰形成所涉及的许多过程都很重要,包括表面生长和氧化,这对烟灰的产率有重要贡献。最近显示,在表面生长(Veshkini等,2014)和氧化(Khosousi和Dworkin,2015)期间,烟灰颗粒的反应性随颗粒的老化而变化。新开发的表面特征模型同时考虑了烟灰老化及其对颗粒表面的影响,从而说明了烟灰在表面生长和氧化中的表面反应性,从而使上述工作协调一致。这项新的开发消除了烟灰数值模拟中使用的一个参数Alpha(烟灰表面可用于反应的部分)随情况的调整,该参数是温度和停留时间(颗粒历史)的函数。因此,新模型协调了生长和氧化过程中不断发展的烟灰表面特征的量化。该模型显示出独特的能力,可以在广泛的层流扩散烟灰火焰实验不确定性范围内预测烟灰浓度和烟雾排放,而模型参数没有任何变化。 (C)2015年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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