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Modeling dislocations and heat conduction in crystalline materials: atomistic/continuum coupling approaches

机译:晶体材料中的脱位和导热脱位和导热:原子/连续耦合方法

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摘要

Dislocations and heat conduction are essential components that influence properties and performance of crystalline materials, yet the modelling of which remains challenging partly due to their multiscale nature that necessitates simultaneously resolving the short-range dislocation core, the long-range dislocation elastic field, and the transport of heat carriers such as phonons with a wide range of characteristic length scale. In this context, multiscale materials modelling based on atomistic/continuum coupling has attracted increased attention within the materials science community. In this paper, we review key characteristics of five representative atomistic/continuum coupling approaches, including the atomistic-to-continuum method, the bridging domain method, the concurrent atomistic-continuum method, the coupled atomistic/discrete-dislocation method, and the quasicontinuum method, as well as their applications to dislocations, heat conduction, and dislocation/phonon interactions in crystalline materials. Through problem-centric comparisons, we shed light on the advantages and limitations of each method, as well as the path towards enabling them to effectively model various material problems in engineering from nano- to mesoscale.
机译:脱位和热传导是影响结晶材料性能和性能的必要组分,但其建模在于它们的多尺度性质,这使得需要同时解决短距离脱位核心,远程位错弹性场和具有各种特征长度尺度的诸如声子的热载体运输。在这种情况下,基于原子/连续耦合的多尺度材料建模引起了材料科学界的增加。在本文中,我们审查了五个代表原子/连续耦合方法的关键特征,包括原子对连续性方法,桥接域法,并发原子连续体方法,耦合原子/离散 - 位错法以及QuasInontinuum方法,以及它们在晶体材料中脱离,热传导和错位/声子相互作用的应用。通过以有问题的比较,我们阐明了每种方法的优点和局限,以及使它们能够在工程中有效地模拟从纳米至Mesoscale的工程中的各种材料问题的路径。

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