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首页> 外文期刊>Journal of Materials Science >Molecular-level computational investigation of shock-wave mitigation capability of polyurea
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Molecular-level computational investigation of shock-wave mitigation capability of polyurea

机译:聚脲冲击波缓解能力的分子水平计算研究

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Various static and (equilibrium and non-equilibrium) dynamic molecular-level computational methods and tools are utilized in order to investigate the basic shock-wave physics and shock-wave material interactions in polyurea (α nano-phase segregated elastomeric co-polymer). The main goal of this investigation was to establish relationships between the nano-segregated polyurea microstructure (consisting of rod-shaped, discrete, so-called "hard domains" embedded into a highly compliant, so-called soft matrix) and the experimentally established superior capability of this material to disperse and attenuate resident shock waves (e.g., those generated as a result of blast-wave impact). By analyzing molecularlevel interactions of the shock waves with polyurea, an attempt was made to identify and quantify main phenomena and viscous/inelastic deformation and microstructurealtering processes taking place at the shock front, which are most likely responsible for the superior shock-mitigation behavior of polyurea. Direct molecular-level simulations of shock-wave generation and propagation in the " strongshock" regime are utilized in order to construct the appropriate shock-Hugoniot relations (relations which are used in the construction of the associated continuum-level material models). Extension of these relations into the "weak-shock" regime of interest from the traumatic brain injury prevention point of view is also discussed.
机译:为了研究聚脲(α纳米相分离的弹性体共聚物)中基本的冲击波物理学和冲击波材料相互作用,使用了各种静态和(平衡和非平衡)动态分子水平计算方法和工具。这项研究的主要目的是建立纳米分离的聚脲微结构(由嵌入高度顺应性的所谓的“软基质”中的棒状,离散的所谓“硬域”组成)与实验确定的上级之间的关系。这种材料分散和减弱常驻冲击波(例如,由冲击波产生的冲击波)的能力。通过分析冲击波与聚脲的分子水平相互作用,试图鉴定和量化在冲击前沿发生的主要现象以及粘性/非弹性变形和微观结构改变过程,这很可能是聚脲优异的减缓冲击行为的原因。 。为了构建适当的激波-休格尼奥特关系(在关联的连续体级材料模型的构造中使用的关系),利用了在“强震”状态下激波产生和传播的直接分子级模拟。从创伤性脑损伤预防的角度,还讨论了将这些关系扩展到感兴趣的“弱电击”状态。

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