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基于CL-20的耐高温PBX的分子动力学模拟

Molecular dynamics simulation of CL-20 based high temperature resistant PBX.

作者信息

Chen Ya-Fang, Wang Bao-Guo, Wang Chun-Guang

机构信息

School of Environmental and Safety Engineering, North University of China, Taiyuan, 030051, China.

Shanxi Jiangyang Chemical Industry Corporation, Taiyuan, 030041, Shanxi, China.

出版信息

J Mol Model. 2025 Jan 21;31(2):55. doi: 10.1007/s00894-025-06287-x.

Abstract

CONTEXT

To address the issue that the output charge in existing Deflagration to Detonation Transition (DDT) detonators cannot withstand high temperatures of 200 °C, and to improve the output performance of the detonator, a CL-20 (Hexanitrohexaazaisowurtzitane) based polymer bonded explosive (PBX) was investigated as the primary charge material for the detonator. To select the most suitable binder for thermal resistance, molecular dynamics (MD) simulations were employed to evaluate the performance of different binders at various crystal planes and temperatures. The results indicate that among the five PBXs models, CL-20/F exhibits the highest binding energy and the shortest bond initiation length at both ambient and elevated temperatures. CL-20/F demonstrates stronger hydrogen bonding interactions and superior thermal stability at high temperatures. CL-20/PCTFE shows the best ductility, while CL-20/F possesses the second-best ductility. Therefore, PBXs containing F possess the best stability, compatibility, and satisfactory ductility, while PBXs with F exhibit the best thermal stability. Both F and F are suitable as binders for CL-20.

METHODS

Molecular dynamics (MD) simulations were carried out using the Materials Studio software to calculate the binding energies, trigger bond lengths, and mechanical properties of five PBX models at different crystal planes at 298 K, and at various temperatures on the (0 1 1) crystal plane after a 1 ns NPT dynamics simulation. The total MD simulation time was 1 ns, with a time step of 1 fs, and the COMPASS force field was employed throughout the simulation.

摘要

背景

为解决现有爆燃转爆轰(DDT)雷管输出装药无法承受200℃高温的问题,并提高雷管的输出性能,研究了一种基于六硝基六氮杂异伍兹烷(CL-20)的聚合物粘结炸药(PBX)作为雷管的主装药材料。为选择最适合耐热性的粘结剂,采用分子动力学(MD)模拟来评估不同粘结剂在不同晶面和温度下的性能。结果表明,在五个PBX模型中,CL-20/F在环境温度和高温下均表现出最高的结合能和最短的键引发长度。CL-20/F在高温下表现出更强的氢键相互作用和优异的热稳定性。CL-20/PCTFE表现出最佳的延展性,而CL-20/F的延展性次之。因此,含氟的PBX具有最佳的稳定性、相容性和令人满意的延展性,而含氟的PBX表现出最佳的热稳定性。F和F均适合作为CL-20的粘结剂。

方法

使用Materials Studio软件进行分子动力学(MD)模拟,计算五个PBX模型在298K下不同晶面的结合能、触发键长度和力学性能,以及在1ns NPT动力学模拟后在(0 1 1)晶面上不同温度下的性能。MD模拟总时间为1ns,时间步长为1fs,整个模拟过程采用COMPASS力场。

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