通过分子动力学模拟获得乙炔热解产生的初生烟尘的内部结构

Khaled Mosharraf MukutMarquette University, Milwaukee, USA, Anindya GangulyUniversity of Melbourne, Melbourne, Australia, Eirini GoudeliUniversity of Melbourne, Melbourne, Australia, Georgios A. KelesidisRutgers, The State University of New Jersey, Piscataway, USAETH Zurich, Zurich, Switzerland, Somesh P. RoyMarquette University, Milwaukee, USA
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引用次数: 0

摘要

一系列反应分子动力学模拟被用来研究乙炔分解产生的初生烟尘颗粒的内部结构。模拟使用 ReaxFF 电位在四种不同温度下进行。对得到的烟尘颗粒进行了编目和分析,以获得其质量、体积、密度、C/H 比、环状结构数量和其他特征的统计数据。本研究共分析了 3324 个初生烟尘颗粒。根据其结构特征,本研究将初生烟尘颗粒分为两类,分别称为 1 型和 2 型初生烟尘颗粒。从颗粒内部的密度径向分布、环状(5、6 或 7 元环)结构和 C/H 比可以看出,1 型和 2 型颗粒的内部结构存在明显差异。研究还发现,这些类别在颗粒大小上也有很好的体现,类型 1 的颗粒较小,类型 2 的颗粒较大。环状结构、密度和 C/H 比的径向分布表明,在 2 型颗粒中存在一个致密的核心区域,而在 1 型颗粒中没有发现核心存在的明确证据。在 2 型初生烟尘颗粒中,发现核心与外壳之间的边界约为颗粒回转半径的 50%-60%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Internal structure of incipient soot from acetylene pyrolysis obtained via molecular dynamics simulations
A series of reactive molecular dynamics simulations is used to study the internal structure of incipient soot particles obtained from acetylene pyrolysis. The simulations were performed using ReaxFF potential at four different temperatures. The resulting soot particles are cataloged and analyzed to obtain statistics of their mass, volume, density, C/H ratio, number of cyclic structures, and other features. A total of 3324 incipient soot particles were analyzed in this study. Based on their structural characteristics, the incipient soot particles are classified into two classes, referred to as type 1 and type 2 incipient soot particles in this work. The radial distribution of density, cyclic (5-, 6-, or 7-member rings) structures and C/H ratio inside the particles revealed a clear difference in the internal structure between type 1 and type 2 particles. These classes were further found to be well represented by the size of the particles with smaller particles in type 1 and larger particles in type 2. The radial distributions of ring structures, density, and C/H ratio indicated the presence of a dense core region in type 2 particles, whereas no clear evidence of the presence of a core was found in type 1 particles. In type 2 incipient soot particles, the boundary between the core and shell was found to be around 50%-60% of the particle radius of gyration.
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