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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Multiscale modeling of dislocation patterns and simulation of nanoscale plasticity in body-centered cubic (BCC) single crystals
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Multiscale modeling of dislocation patterns and simulation of nanoscale plasticity in body-centered cubic (BCC) single crystals

机译:体心立方(BCC)单晶的位错模式的多尺度建模和纳米可塑性的模拟

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摘要

Understanding dislocation multiplication, interactions, and hence crystal plasticity has been a long-standing challenge of major scientific significance. Combining atomistic enriched constitutive law with continuum finite element formulation, we developed a multi scale framework to capture geometrically-compatible dislocation patterns in Body Centered Cubic (BCC) single crystals. This dislocation pattern dynamics framework was successfully applied to study crystal plasticity in Face Centered Cubic (FCC) crystals before, coined as the Multiscale Crystal Defect Dynamics (MCDD) method. Inheriting from MCDD method, we now established a multiscale dislocation pattern dynamics model for BCC crytals with the following novelties: (1) Comparing with molecular dynamics approach, MCDD can predict crystal plasticity in BCC crystals in a more efficient way and in larger scale; (2) MCDD can capture the geometrically-compatible dislocation pattern distribution and evolution in BCC crystals, and (3) MCDD can capture the size effect of crystal plasticity in single BCC crystals at nanoscale, or to simulate size-dependent plasticity in BCC single crystals. In particular, we have successfully simulated crystal plasticity in a BCC crystal at the sub-micron scale by using a serial computing code in a desktop environment. (C) 2019 Elsevier Ltd. All rights reserved.
机译:理解位错的倍增,相互作用以及晶体可塑性一直是具有重大科学意义的长期挑战。结合原子富集的本构定律与连续有限元公式,我们开发了一个多尺度框架来捕获“体心立方”(BCC)单晶中的几何兼容位错图案。这种位错模式动力学框架以前曾成功地用于研究面心立方(FCC)晶体的晶体可塑性,这被称为多尺度晶体缺陷动力学(MCDD)方法。继承了MCDD方法,我们建立了BCC晶状体的多尺度位错模式动力学模型,具有以下新颖性:(1)与分子动力学方法相比,MCDD可以更有效,更大规模地预测BCC晶体的晶体可塑性; (2)MCDD可以捕获BCC晶体中几何相容的位错图案的分布和演化,并且(3)MCDD可以捕获纳米级的单个BCC晶体中晶体可塑性的尺寸效应,或模拟BCC单晶体中的尺寸依赖性可塑性。 。特别是,我们已经通过在台式机环境中使用串行计算代码成功地模拟了亚微米级BCC晶体中的晶体可塑性。 (C)2019 Elsevier Ltd.保留所有权利。

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