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通过反应分子动力学大规模模拟研究六氢-1,3,5-三硝基-1,3,5-三嗪(RDX)的固相热分解及纳米晶体效应

The solid phase thermal decomposition and nanocrystal effect of hexahydro-1,3,5-trinitro-1,3,5-triazine (RDX) via ReaxFF large-scale molecular dynamics simulation.

作者信息

Zheng Ke, Wen Yushi, Huang Bing, Wang Jun, Chen Jin, Xie Gongnan, Lv Guoqing, Liu Jian, Qiao Zhiqiang, Yang Guangcheng

机构信息

Institute of Chemical Materials, China Academy of Engineering Physics, Mianyang, Sichuan 621900, China.

School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an, 710072, China.

出版信息

Phys Chem Chem Phys. 2019 Aug 21;21(31):17240-17252. doi: 10.1039/c9cp01482a. Epub 2019 Jul 26.

DOI:10.1039/c9cp01482a
PMID:31347632
Abstract

The solid phase thermal decomposition and nanocrystal effect are extremely important to understand the ignition, combustion, reaction growth and buildup to detonation under shock wave action. To explore the basic mechanism at the atomic level and understand the interaction among nanocrystal lattices, molecules, and intermediates during the solid phase decomposition, ReaxFF large-scale molecular dynamics simulation at 1000-3000 K was demonstrated on the solid phase of nanocrystalline RDX with a size in the range of 5-12 nm. Based on the analysis of the RDX decay and chemical species, we found that the whole decomposition process can be divided into the solid-affected stage and the following less-condensed phase stage. From the results of NO diffusion and high frequency reaction statistics for the nanocrystal effect on the RDX decay, intermediate diffusion was found to be strongly associated with the chemical pathway. In addition, it was found for the first time that the thermal decomposition of RDX originates from the inside of the nanocrystal instead of its surface. Furthermore, a promising uniform energy distribution mechanism transfer by vibration inside the nanocrystalline RDX was demonstrated. The detailed information derived from this study can aid in the thorough understanding of the size effect on the chemical kinetics of nanoexplosives, especially for thermal decomposition and reaction growth.

摘要

固相热分解和纳米晶体效应对于理解冲击波作用下的点火、燃烧、反应增长以及爆轰的形成极为重要。为了在原子层面探究基本机制,并了解固相分解过程中纳米晶格、分子和中间体之间的相互作用,我们对尺寸在5 - 12纳米范围内的纳米晶RDX固相进行了1000 - 3000 K下的ReaxFF大规模分子动力学模拟。基于对RDX分解和化学物种的分析,我们发现整个分解过程可分为固相影响阶段和随后的低凝聚相阶段。从纳米晶体对RDX分解的影响的NO扩散和高频反应统计结果来看,中间体扩散与化学途径密切相关。此外,首次发现RDX的热分解源于纳米晶体内部而非其表面。此外,还证明了纳米晶RDX内部通过振动实现有前景的均匀能量分布机制转移。本研究得出的详细信息有助于深入理解尺寸对纳米炸药化学动力学的影响,特别是热分解和反应增长方面。

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