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A species-clustered splitting scheme for the integration of large-scale chemical kinetics using detailed mechanisms

机译:一种使用详细机制集成大规模化学动力学的物种簇分裂方案

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摘要

In this study, a species-clustered integrator for chemical kinetics with large detailed mechanisms based on operator-splitting is presented. The ordinary differential equation (ODE) system of large-scale chemical kinetics is split into clusters of species by using graph partition methods which have been intensely studied in areas of model reduction, parameterization and coarse-graining, e.g., diffusion maps based on the concept of Markov random walk. The definition of the weight (similarity) matrix is application-dependent and follows from chemical kinetics. Each species cluster is integrated by the variable-coefficient ODE solver VODE. The theoretically expected speedup in computational efficiency is reproduced by numerical experiments on three zero-dimensional (0D) auto-ignition problems, considering detailed hydrocarbon/air combustion mechanisms at varying scales, from 53 species with 325 reactions of methane to 2115 species with 8157 reactions of n-hexadecane. Optimal clustering weighing both prediction accuracy (for ignition delay and equilibrium temperature) and computational efficiency is implied with the clustering number N = 2 for the 53-species methane mechanism, N = 4 for the 561-species n-heptane mechanism and N = 8 for the 2115-species n-hexadecane mechanism. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在这项研究中,提出了一种基于化学性质的分子动力学积分器,具有基于操作员拆分的大型详细机理。使用图分区方法将大规模化学动力学的常微分方程(ODE)系统划分为物种簇,该方法已在模型简化,参数化和粗粒度等领域进行了深入研究,例如基于该概念的扩散图。马尔科夫随机走。权重(相似性)矩阵的定义取决于应用程序,并且遵循化学动力学。每个物种簇由可变系数ODE求解器VODE集成。通过对三个零维(0D)自燃问题进行数值实验,重现了理论上预期的计算效率提高,同时考虑了不同规模的详细碳氢化合物/空气燃烧机理,从53种甲烷发生325次反应到2115种甲烷发生8157次反应正十六烷。最佳聚类权重了预测准确性(点火延迟和平衡温度)和计算效率,其中53种甲烷机制的聚类数N = 2,561种正庚烷机制的聚类数N = 4,N = 8用于2115种正十六烷机制。 (C)2019燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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