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通过基于速率的算法为烃类燃料热解和氧化的ReaxFF分子动力学模拟生成自动骨架网络

Automated Skeleton Network Generation for ReaxFF Molecular Dynamics Simulations of Hydrocarbon Fuel Pyrolysis and Oxidation via a Rate-Based Algorithm.

作者信息

Xiao Yuanyuan, Zheng Mo, Li Xiaoxia, Ren Chunxing

机构信息

State Key Laboratory of Mesoscience and Engineering, Chinese Academy of Sciences, Beijing 100190, P. R. China.

University of Chinese Academy of Sciences, Beijing 100049, P. R. China.

出版信息

J Chem Theory Comput. 2024 Jul 9;20(13):5539-5557. doi: 10.1021/acs.jctc.4c00409. Epub 2024 Jun 27.

DOI:10.1021/acs.jctc.4c00409
PMID:38937883
Abstract

In this study, we present an automated approach of rate-based skeleton network generation for ReaxFF MD simulation (RxMD-SN) for deriving the reaction kinetic mechanism of large hydrocarbon fuels in pyrolysis and oxidation from large-scale ReaxFF MD simulations. The approach contains the statistical calculation of reaction rate constants and the generation of skeleton reaction networks using a rate-based algorithm. The RxMD-SN method takes advantage of reaction flux ranking at a small time interval in terms of temporal reaction rate to extract the core reaction networks, which allows for keeping the rare reaction events that may be dominant in a certain period of the reaction network. The kinetic models derived from ReaxFF MD simulation in CH oxidation can reproduce what was obtained in the ReaxFF MD simulation, which demonstrates the capability of RxMD-SN in capturing the global reaction kinetics. An evaluation of reaction rate constants indicates that close kinetic parameters are shared for -octane oxidation of similar reaction classes, shared oxidation reactions of CH against -heptane, and shared pyrolysis reactions of the RP-3 surrogate fuel against -heptane. This capability of RxMD-SN is particularly beneficial in meeting the challenges in characterizing the oxidation reaction kinetics of large hydrocarbon molecules. RxMD-SN approach is potentially a general approach in chemical kinetics modeling on the basis of ReaxFF MD simulations.

摘要

在本研究中,我们提出了一种基于速率的骨架网络生成自动化方法,用于ReaxFF分子动力学模拟(RxMD-SN),以从大规模ReaxFF分子动力学模拟中推导大型烃类燃料在热解和氧化过程中的反应动力学机制。该方法包括反应速率常数的统计计算以及使用基于速率的算法生成骨架反应网络。RxMD-SN方法利用在小时间间隔内基于时间反应速率的反应通量排序来提取核心反应网络,这使得能够保留在反应网络的特定时期可能占主导地位的稀有反应事件。从ReaxFF分子动力学模拟中导出的CH氧化动力学模型能够重现ReaxFF分子动力学模拟中得到的结果,这证明了RxMD-SN捕捉全局反应动力学的能力。对反应速率常数的评估表明,对于相似反应类别的正辛烷氧化、CH与正庚烷的共享氧化反应以及RP-3替代燃料与正庚烷的共享热解反应,都共享了相近的动力学参数。RxMD-SN的这种能力在应对表征大型烃分子氧化反应动力学的挑战方面特别有益。RxMD-SN方法可能是基于ReaxFF分子动力学模拟的化学动力学建模中的一种通用方法。

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Automated Skeleton Network Generation for ReaxFF Molecular Dynamics Simulations of Hydrocarbon Fuel Pyrolysis and Oxidation via a Rate-Based Algorithm.通过基于速率的算法为烃类燃料热解和氧化的ReaxFF分子动力学模拟生成自动骨架网络
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