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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Anisotropic Initial Reaction Mechanism and Sensitivity Characterization of the Layered Crystal Structure Explosive ICM-102 under Shock Loading
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Anisotropic Initial Reaction Mechanism and Sensitivity Characterization of the Layered Crystal Structure Explosive ICM-102 under Shock Loading

机译:抗冲击下分层晶体结构爆炸性ICM-102的各向异性初始反应机理及敏感性表征

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The layered crystal structure of the explosive ICM-102 (2,4,6-triamino-5-nitropyrimidine-1,3-dioxide) exhibits an extremely low sensitivity, and furthermore, the layering is observed to induce typical anisotropy. To elucidate the anisotropic initial reaction mechanism, ReaxFF-Ig reactive molecular dynamic simulations were performed to investigate the shock-induced reaction of ICM-102 by the piston impact on the supercell directly along different directions at various velocities. A novel method is proposed, which eliminates the boundary reflection at the supercell edge and studies prolonged simulations of the explosive reaction within a small supercell. When subjected to shock loadings along the x and y axes, which are parallel to the multilayers, the layered structure is at first observed to bend prior to undergoing a dimerization reaction via intermolecular O-O or O-H bond formation between the ICM-102 molecules in the same layer. When subjected to shock loading along the z axis, which is perpendicular to the multilayers, the interlayer space is first compressed leading to a dimerization reaction via N-O or C-N bond formation between the ICM-102 molecules from different layers. The energy for dimerization of the molecules in the same layer is lower, and hence, dimerization is observed to be easier. The reaction of ICM-102 is the most intense when the shock loading along the x axis is of the same strength as the shock loading along the other directions. A critical pressure is observed when the reaction rate of ICM-102 changes from slow to fast regardless of the shock loading direction. The critical pressure correlates well with shock sensitivity. The most sensitive orientation of ICM-102 is x axis > y axis > z axis.
机译:爆炸性ICM-102(2,4,6-三氨基-5-硝基嘧啶-1,3-二氧化胺)的层状晶体结构表现出极低的敏感性,并且还观察到分层以诱导典型各向异性。为了阐明各向异性的初始反应机制,进行Reaxff-IG反应性分子动态模拟,以研究ICM-102的冲击诱导的反应通过在各种速度的不同方向上直接对超级晶片的影响。提出了一种新的方法,其消除了超级晶缘处的边界反射,并在小超级晶片内的爆炸反应的延长模拟。当沿着与多层平行的x和y轴进行冲击载荷时,首先观察到层状结构在通过同一ICM-102分子之间经由分子间OO或OH键形成之前观察到弯曲以弯曲。层。当沿着Z轴垂直于多层的Z轴进行冲击载荷时,首先压缩中间空间,导致来自来自不同层的ICM-102分子之间的N-O或C-N键形成的二聚化反应。相同层中分子二聚化的能量较低,因此观察到二聚化以更容易。当沿X轴的冲击负载与沿其他方向的冲击负载具有相同的强度时,ICM-102的反应是最强烈的。当ICM-102的反应速率从慢速变化时,无论冲击加载方向如何,都会观察到临界压力。临界压力伴随着休克敏感性好。 ICM-102最敏感的取向是X轴> Y轴> Z轴。

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