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A Review of Computational Methods in Materials Science: Examples from Shock-Wave and Polymer Physics

机译:材料科学中的计算方法综述:来自冲击波和高分子物理的例子

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摘要

This review discusses several computational methods used on different length and time scales for the simulation of material behavior. First, the importance of physical modeling and its relation to computer simulation on multiscales is discussed. Then, computational methods used on different scales are shortly reviewed, before we focus on the molecular dynamics (MD) method. Here we survey in a tutorial-like fashion some key issues including several MD optimization techniques. Thereafter, computational examples for the capabilities of numerical simulations in materials research are discussed. We focus on recent results of shock wave simulations of a solid which are based on two different modeling approaches and we discuss their respective assets and drawbacks with a view to their application on multiscales. Then, the prospects of computer simulations on the molecular length scale using coarse-grained MD methods are covered by means of examples pertaining to complex topological polymer structures including star-polymers, biomacromolecules such as polyelectrolytes and polymers with intrinsic stiffness. This review ends by highlighting new emerging interdisciplinary applications of computational methods in the field of medical engineering where the application of concepts of polymer physics and of shock waves to biological systems holds a lot of promise for improving medical applications such as extracorporeal shock wave lithotripsy or tumor treatment.
机译:这篇综述讨论了在不同长度和时间尺度上用于模拟材料行为的几种计算方法。首先,讨论了物理建模的重要性及其与多尺度计算机仿真的关系。然后,在我们关注分子动力学(MD)方法之前,将简要回顾一下用于不同规模的计算方法。在这里,我们以类似教程的方式调查了一些关键问题,其中包括几种MD优化技术。此后,讨论了用于材料研究中数值模拟功能的计算示例。我们关注基于两种不同建模方法的固体冲击波模拟的最新结果,并讨论它们各自的优点和缺点,以期将其应用于多尺度。然后,通过涉及复杂拓扑聚合物结构的实例,涵盖了使用粗粒MD方法在分子长度尺度上进行计算机模拟的前景,这些结构包括星形聚合物,生物大分子(如聚电解质)和具有固有刚度的聚合物。这篇综述着重强调了计算方法在医学工程领域的新兴跨学科应用,其中高分子物理和冲击波在生物系统中的应用为改善医学应用(如体外冲击波碎石术或肿瘤)带来了广阔的前景治疗。

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