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All-atom molecular-level computational simulations of planar longitudinal Shockwave interactions with polyurea, soda-lime glass and polyurea/glass interfaces

机译:平面纵向冲击波与聚脲,钠钙玻璃和聚脲/玻璃界面相互作用的全原子分子水平计算模拟

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Purpose - The purpose of this paper is to study the mechanical response of polyurea, soda-lime glass (glass, for short), polyurea/glass/polyurea and glass/polyurea/glass sandwich structures under dynamic-loading conditions involving propagation of planar longitudinal Shockwaves. Design/methodology/approach - The problem of Shockwave generation, propagation and interaction with material boundaries is investigated using non-equilibrium molecular dynamics. The results obtained are used to construct basic shock Hugoniot relationships associated with the propagation of Shockwaves through a homogeneous material (polyurea or glass, in the present case). The fidelity of these relations is established by comparing them with their experimental counterparts, and the observed differences are rationalized in terms of the microstructural changes experienced by the shockwave-swept material. The relationships are subsequently used to predict the outcome of the interactions of Shockwaves with polyurea/glass or glass/polyurea material boundaries. Molecular-level simulations are next used to directly analyze the same shockwave/material-boundary interactions.Findings - The molecular-level simulations suggested, and the subsequent detailed microstructural analyses confirmed, the formation of topologically altered interfacial regions, i.e. polyurea/glass and glass/polyurea interphases.Originality/value - To the authors' knowledge, the present work is a first attempt to analyze, using molecular-level simulation methods, the interaction of Shockwaves with material boundaries.
机译:目的-本文的目的是研究动态载荷条件下涉及平面纵向传播的聚脲,钠钙玻璃(简称玻璃),聚脲/玻璃/聚脲和玻璃/聚脲/玻璃夹心结构的机械响应。冲击波。设计/方法/方法-使用非平衡分子动力学研究了冲击波的产生,传播以及与材料边界的相互作用的问题。获得的结果用于构建与激波通过均质材料(在当前情况下为聚脲或玻璃)的传播相关的基本激波Hugoniot关系。通过将它们与实验对应物进行比较,可以建立这些关系的保真度,并根据冲击波扫描材料所经历的微观结构变化合理化观察到的差异。这些关系随后用于预测冲击波与聚脲/玻璃或玻璃/聚脲材料边界相互作用的结果。接下来,将使用分子水平模拟直接分析相同的冲击波/材料-边界相互作用。发现-提出了分子水平模拟,并随后进行了详细的微结构分析,证实了拓扑变化的界面区域的形成,即聚脲/玻璃和玻璃/聚脲中间相。来源/价值-据作者所知,本研究是首次尝试使用分子水平模拟方法来分析冲击波与物质边界的相互作用。

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