Fu Jianbo, Wang Baoguo, Chen Yafang, Li Yunchuan, Tan Xing, Wang Biyuan, Ye Baoyun
1North Univ China, Sch Environm and Safety Engn, Taiyuan 030051, Shanxi, People's Republic of China.
North Univ China, Shanxi Engn Technol Res Ctr Ultrafine Powder, Taiyuan 030051, Shanxi, People's Republic of China.
R Soc Open Sci. 2021 Feb 10;8(2):200345. doi: 10.1098/rsos.200345.
Molecular dynamics (MD) simulations have been applied to investigate 1, 1-diamino-2, 2-dinitroethene (FOX-7) crystal and FOX-7 (011)-based polymer-bonded explosives (PBXs) with four typical polymers, polyethylene glycol (PEG), fluorine-polymer (F), ethylene-vinyl acetate copolymer (EVA) and ester urethane (ESTANE5703) under COMPASS force field. Binding energy ( ), cohesive energy density (CED), initiation bond length distribution, RDG analysis and isotropic mechanical properties of FOX-7 and its PBXs at different temperatures were reported for the first time, and the relationship between them and sensitivity. Using quantum chemistry, FOX-7 was optimized with the four polymers at the B3LYP/6-311++G(d,p) level, and the structure and RDG of the optimized composite system were analysed. The results indicated that the binding energy presented irregular changes with the increase in temperature. The order of binding ability of different binders to the FOX-7 (011) crystal surface is PEG > ESTANE5703 > EVA > F. When the temperature increases, the maximum bond length ( ) of the induced bond increases and the CED decreases. This result is achieved in agreement with the known experimental fact that the sensitivity of explosives increases with temperature, and they can be used as the criterion to predict the sensitivity of explosives. The descending order of is FOX-7 > F > ESTANE5703≈EVA > PEG. The intermolecular interactions between FOX-7 and the four polymers were mainly weak hydrogen bonding and van der Waals interactions, and these interactions helped to reduce the bond length of C-NO, leading to a decrease in the sensitivity of FOX-7. The addition of polymers can effectively improve the mechanical properties of explosives. Among the four polymers, EVA has the best effect on improving the mechanical properties of FOX-7 (011). At the same temperature, the modulus can be used to predict the sensitivity of high-energy materials. Cauchy pressure can predict the sensitivity of non-brittle energetic materials. The nature of the interaction between FOX-7 and the four polymers is hydrogen bonding and van der Waals force, of which hydrogen bonding is the main one. These studies are meaningful for the formulation design and sensitivity prediction of FOX-7 and its PBXs.
采用分子动力学(MD)模拟方法,在COMPASS力场下研究了1,1 - 二氨基 - 2,2 - 二硝基乙烯(FOX - 7)晶体以及以FOX - 7(011)为基的含四种典型聚合物(聚乙二醇(PEG)、含氟聚合物(F)、乙烯 - 醋酸乙烯酯共聚物(EVA)和酯型聚氨酯(ESTANE5703))的聚合物粘结炸药(PBXs)。首次报道了FOX - 7及其PBXs在不同温度下的结合能( )、内聚能密度(CED)、引发键长分布、RDG分析和各向同性力学性能,以及它们与感度之间的关系。采用量子化学方法,在B3LYP/6 - 311++G(d,p)水平下对FOX - 7与四种聚合物进行了优化,并分析了优化后复合体系的结构和RDG。结果表明,结合能随温度升高呈现不规则变化。不同粘结剂对FOX - 7(011)晶体表面的结合能力顺序为PEG>ESTANE5703>EVA>F。当温度升高时,诱导键的最大键长( )增加,CED减小。这一结果与炸药感度随温度升高这一已知实验事实相符,可作为预测炸药感度的判据。 的降序排列为FOX - 7>F>ESTANE5703≈EVA>PEG。FOX - 7与四种聚合物之间的分子间相互作用主要为弱氢键和范德华相互作用,这些相互作用有助于缩短C - NO的键长,导致FOX - 7感度降低。聚合物的添加能有效改善炸药的力学性能。在四种聚合物中,EVA对改善FOX - 7(011)的力学性能效果最佳。在相同温度下,模量可用于预测高能材料的感度。柯西压力可预测非脆性含能材料的感度。FOX - 7与四种聚合物之间相互作用的本质是氢键和范德华力,其中氢键为主。这些研究对FOX - 7及其PBXs的配方设计和感度预测具有重要意义。