镁中压痕诱导的变形孪晶:微结构演变和尺寸效应的相场建模

IF 15.8 1区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING
Mohsen Rezaee-Hajidehi, Przemysław Sadowski, Stanisław Stupkiewicz
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引用次数: 0

摘要

镁具有高度各向异性的非弹性变形,包括大量的变形孪晶活动。仪器微/纳米压痕技术已被广泛应用于表征镁的力学性能,通常通过压痕载荷-深度响应、表面形貌分析,以及较少使用的块体材料内部的死后微观结构分析。然而,实验限制阻碍了对微观结构演变的实时观察。为了弥补这一空白,我们采用了最近开发的有限应变模型,该模型结合相场方法和常规晶体塑性来模拟镁单晶中压痕诱导孪晶微观结构的演变及其与塑性滑移的相互作用。特别强调了两个方面:取向相关的非弹性变形和压痕尺寸效应。我们二维计算研究的几个结果与先前的实验观察结果一致。其中最主要的是在大空间尺度上获得的双胞胎微观结构的复杂形态,据我们所知,这代表了以前的建模研究中没有捕获的细节水平。为了进一步阐明尺寸效应,我们通过纳入梯度增强晶体塑性来扩展模型,并重新审视“越小越强”的概念。相应的结果强调了梯度塑性对孪晶界界面能在控制尺寸相关力学响应方面的主导影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Indentation-induced deformation twinning in magnesium: Phase-field modeling of microstructure evolution and size effects

Indentation-induced deformation twinning in magnesium: Phase-field modeling of microstructure evolution and size effects
Magnesium is distinguished by its highly anisotropic inelastic deformation involving a profuse activity of deformation twinning. Instrumented micro/nano-indentation technique has been widely applied to characterize the mechanical properties of magnesium, typically through the analysis of the indentation load–depth response, surface topography, and less commonly, the post-mortem microstructure within the bulk material. However, experimental limitations prevent the real-time observation of the evolving microstructure. To bridge this gap, we employ a recently-developed finite-strain model that couples the phase-field method and conventional crystal plasticity to simulate the evolution of the indentation-induced twin microstructure and its interaction with plastic slip in a magnesium single-crystal. Particular emphasis is placed on two aspects: orientation-dependent inelastic deformation and indentation size effects. Several outcomes of our 2D computational study are consistent with prior experimental observations. Chief among them is the intricate morphology of twin microstructure obtained at large spatial scales, which, to our knowledge, represents a level of detail that has not been captured in previous modeling studies. To further elucidate on size effects, we extend the model by incorporating gradient-enhanced crystal plasticity, and re-examine the notion of ‘smaller is stronger’. The corresponding results underscore the dominant influence of gradient plasticity over the interfacial energy of twin boundaries in governing the size-dependent mechanical response.
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来源期刊
Journal of Magnesium and Alloys
Journal of Magnesium and Alloys Engineering-Mechanics of Materials
CiteScore
20.20
自引率
14.80%
发文量
52
审稿时长
59 days
期刊介绍: The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.
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