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通过分子动力学模拟研究 CL-20/TNT 基聚合物粘结炸药的相互作用、钝感和导热性。

Interaction, Insensitivity and Thermal Conductivity of CL-20/TNT-Based Polymer-Bonded Explosives through Molecular Dynamics Simulation.

机构信息

Molecules and Materials Computation Institute, School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.

出版信息

Int J Mol Sci. 2023 Jul 27;24(15):12067. doi: 10.3390/ijms241512067.

Abstract

Binders mixed with explosives to form polymer-bonded explosives (PBXs) can reduce the sensitivity of the base explosive by improving interfacial interactions. The interface formed between the binder and matrix explosive also affects the thermal conductivity. Low thermal conductivity may result in localized heat concentration inside the PBXs, causing the detonation of the explosive. To investigate the binder-explosive interfacial interactions and thermal conductivity, PBXs with polyurethane as the binder and 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12-hexaazaisowurtzitane/2,4,6-trinitrotoluene (CL-20/TNT) co-crystal as the matrix explosive were investigated through molecular dynamics (MD) simulations and reverse non-equilibrium molecular dynamics (rNEMD) simulation. The analysis of the pair correlation function revealed that there are hydrogen bonding interactions between Estane5703 and CL-20/TNT. The length of the trigger bonds was adopted as a theoretical criterion of sensitivity, and the effect of polymer binders on the sensibility of PBXs was correlated by analyzing the interfacial trigger bonds and internal trigger bonds of PBXs for the first time. The results indicated that the decrease in sensitivity of CL-20/TNT mainly comes from the CL-20/TNT contact with Estane5703. Therefore, the sensitivity of CL-20/TNT-based PBXs can be further reduced by increasing the contact area between CL-20/TNT and Estane5703. The thermal conductivity of PBXs composed of Estane5703 and CL-20/TNT (0 0 1), (0 1 0) and (1 0 0) crystal planes, respectively, were calculated through rNEMD simulations, and the results showed that only the addition of Estane5703 to the (1 0 0) crystal plane can improve the thermal conductivity of PBX100.

摘要

黏合剂与爆炸物混合形成聚合物粘结炸药(PBX),可以通过改善界面相互作用来降低基础爆炸物的敏感度。黏合剂与基质爆炸物之间形成的界面也会影响热导率。低导热率可能导致 PBX 内部局部热量集中,从而引发爆炸物爆炸。为了研究黏合剂-爆炸物界面相互作用和热导率,通过分子动力学(MD)模拟和反向非平衡分子动力学(rNEMD)模拟,研究了以聚氨酯为黏合剂、2,4,6,8,10,12-六硝基金刚烷/2,4,6-三硝基甲苯(CL-20/TNT)共晶为基质爆炸物的 PBX。通过对配分函数的分析,发现 Estane5703 与 CL-20/TNT 之间存在氢键相互作用。采用引发键长度作为敏感度的理论判据,首次分析了界面引发键和 PBX 内部引发键,关联了聚合物黏合剂对 PBX 敏感度的影响。结果表明,CL-20/TNT 敏感度的降低主要来自 CL-20/TNT 与 Estane5703 的接触。因此,通过增加 CL-20/TNT 与 Estane5703 的接触面积,可以进一步降低基于 CL-20/TNT 的 PBX 的敏感度。通过 rNEMD 模拟计算了由 Estane5703 和 CL-20/TNT 组成的 PBXs 的热导率,分别为 Estane5703 和 CL-20/TNT 的(0 0 1)、(0 1 0)和(1 0 0)晶面。结果表明,只有将 Estane5703 添加到(1 0 0)晶面才能提高 PBX100 的热导率。

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