采用前沿跟踪数值框架高效准确地模拟了晶粒生长过程中的Smith-Zener钉钉机制

IF 3.1 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Sebastian Florez, Marc Bernacki
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引用次数: 0

摘要

本研究提出了一种模拟二维多晶中第二相颗粒钉住晶界的新方法。这些颗粒在热处理过程中是非常重要的,因为在没有颗粒的情况下,它们会产生与合金中发生的显微组织演变的偏差。这种现象被称为史密斯-齐纳钉扎,在许多合金的金属成形过程中被冶金学家广泛用于控制晶粒尺寸。然后需要预测工具来准确地模拟这种现象。本文介绍了一种新的方法来模拟受第二相粒子存在的微观组织演变。该方法采用拉格朗日二维前沿跟踪方法,而粒子使用离散圆形或固定节点建模。粒子的演化可以用粒子收缩的恒定速度来考虑和建模。这种方法的优点是改进了顶点方法中对现象的有限描述,可用于大范围的第二相颗粒尺寸,并且与前捕获类型的方法相比,可以缩短计算时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient and accurate simulation of the Smith–Zener pinning mechanism during grain growth using a front-tracking numerical framework
This study proposes a new full-field approach for modeling grain boundary pinning by second phase particles in two-dimensional polycrystals. These particles are of great importance during thermomechanical treatments, as they produce deviations from the microstructural evolution occurring in the alloy in the absence of particles. This phenomenon, well-known as Smith–Zener pinning, is widely used by metallurgists to control the grain size during the metal forming process of many alloys. Predictive tools are then needed to accurately model this phenomenon. This article introduces a new methodology for the simulation of microstructural evolutions subjected to the presence of second phase particles. The methodology employs a Lagrangian 2D front-tracking methodology, while the particles are modeled using discretized circular shapes or pinning nodes. The evolution of the particles can be considered and modeled using a constant velocity of particle shrinking. This approach has the advantages of improving the limited description made of the phenomenon in vertex approaches, to be usable for a wide range of second-phase particle sizes and to improve calculation times compared to front-capturing type approaches.
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来源期刊
Computational Materials Science
Computational Materials Science 工程技术-材料科学:综合
CiteScore
6.50
自引率
6.10%
发文量
665
审稿时长
26 days
期刊介绍: The goal of Computational Materials Science is to report on results that provide new or unique insights into, or significantly expand our understanding of, the properties of materials or phenomena associated with their design, synthesis, processing, characterization, and utilization. To be relevant to the journal, the results should be applied or applicable to specific material systems that are discussed within the submission.
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