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DNAN/DNB共晶PBXs的分子动力学模拟

Molecular dynamics simulation of DNAN/DNB cocrystal PBXs.

作者信息

Li Xin-Yi, Wang Bao-Guo, Chen Ya-Fang, Fu Jian-Bo, Du Ji-Hang, Wang Chun-Guang

机构信息

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

School of Mechatronical Engineering, Beijing Institute of Technology, Beijing, 100081, China.

出版信息

J Mol Model. 2024 Aug 8;30(9):303. doi: 10.1007/s00894-024-06096-8.

Abstract

CONTEXT

The DNAN/DNB eutectic is a high-energy explosive eutectic with superior safety and thermal stability compared to traditional melt-cast explosives. However, the addition of polymer binders can effectively enhance its mechanical properties, allowing for continued production demands without the need for changes to existing factory equipment. In this paper, a model of the DNAN/DNB eutectic explosive was established, and five different types of polymers-cis-1,4-polybutadiene (BR), ethylene-vinyl acetate copolymer (EVA), polyethylene glycol (PEG), fluorinated polymer (F2603), and polyvinylidene fluoride (PVDF)-were added to the (1 0 - 1), (1 0 1), and (0 1 1) cleavage planes, respectively, to form polymer-bonded explosives (PBXs). The stability, trigger bond length, mechanical properties, and detonation performance of the various polymer-bound PBXs were predicted retrogressively. Among the five PBX models, the DNAN/DNB/PEG model exhibited the highest binding energy and the shortest trigger bond length, indicating a significant improvement in stability, compatibility, and sensitivity compared to the original eutectic. Additionally, although the detonation performance of DNAN/DNB decreased after the addition of binders, the final results were still satisfactory. Overall, the DNAN/DNB/PEG model demonstrated excellent comprehensive performance, proving that among the many polymer binders, PEG is the optimal choice for DNAN/DNB.

METHODS

Within the Materials Studio software, molecular dynamics (MD) simulations were employed to predict the properties of the DNAN/DNB eutectic PBX. The MD simulation timestep was set to 1 fs, with a cumulative simulation duration of 2 ns. A 2 ns MD simulation was conducted using the isothermal-isobaric ensemble (NPT). The COMPASS force field was applied, and the temperature was fixed at 295 K.

摘要

背景

DNAN/DNB低共熔物是一种高能炸药低共熔物,与传统熔铸炸药相比,具有更高的安全性和热稳定性。然而,添加聚合物粘合剂可以有效提高其机械性能,从而在无需更改现有工厂设备的情况下满足持续的生产需求。本文建立了DNAN/DNB低共熔炸药模型,并将五种不同类型的聚合物——顺式1,4-聚丁二烯(BR)、乙烯-醋酸乙烯酯共聚物(EVA)、聚乙二醇(PEG)、含氟聚合物(F2603)和聚偏氟乙烯(PVDF)——分别添加到(1 0 - 1)、(1 0 1)和(0 1 1)解理面,以形成聚合物粘结炸药(PBX)。对各种聚合物粘结PBX的稳定性、触发键长度、机械性能和爆轰性能进行了反向预测。在五个PBX模型中,DNAN/DNB/PEG模型表现出最高的结合能和最短的触发键长度,表明与原始低共熔物相比,其稳定性、相容性和敏感性有显著提高。此外,虽然添加粘合剂后DNAN/DNB的爆轰性能有所下降,但最终结果仍令人满意。总体而言,DNAN/DNB/PEG模型表现出优异的综合性能,证明在众多聚合物粘合剂中,PEG是DNAN/DNB的最佳选择。

方法

在Materials Studio软件中,采用分子动力学(MD)模拟来预测DNAN/DNB低共熔物PBX的性能。MD模拟时间步长设置为1 fs,累积模拟时长为2 ns。使用等温等压系综(NPT)进行了2 ns的MD模拟。应用COMPASS力场,温度固定在295 K。

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