不同应变路径下先奥氏体取向对马氏体钢变形行为影响的晶体塑性模型

IF 7.6 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
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引用次数: 0

摘要

利用晶体塑性(CP)模型和分层代表体积元素(RVE),研究了先奥氏体晶粒(PAG)取向对低碳马氏体钢变形行为的影响。为准确重建马氏体钢中的 PAG,对 Kurdjumov-Sachs (K-S) 关系进行了改进。通过将分析计算与反演方法相结合,开发了基于纳米压痕测试的 CP 参数稳健校准策略。随后,通过操纵初始 PAG 取向生成虚拟多晶聚集体。模拟结果表明,给 PAG 分配立方体纹理可增强马氏体在平面应变拉伸下的应变硬化。此外,带有黄铜和铜取向 PAG 的 RVE 表现出相似的变形行为,而带有立方体取向 PAG 的 RVE 应变分布更均匀。PAG 取向对应力场和应变场的影响与变形过程中的晶格旋转行为相关。值得注意的是,不同的应变路径会引起不同的晶格旋转轨迹,其中单轴拉伸和平面应变拉伸有利于晶粒向硬γ纤维方向重新定向,而等轴拉伸则会促使晶体基质向〈001〉和〈011〉方向集中。这些发现深入揭示了马氏体钢中微结构取向与变形行为之间错综复杂的关系,这对性能优化至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Crystal plasticity modeling of prior austenite orientation effects on deformation behaviors of martensitic steels under different strain paths

Crystal plasticity modeling of prior austenite orientation effects on deformation behaviors of martensitic steels under different strain paths

The influence of prior austenite grain (PAG) orientation on the deformation behavior of a low-carbon martensitic steel is investigated using crystal plasticity (CP) modeling with hierarchical representative volume elements (RVEs). The Kurdjumov-Sachs (K-S) relationship is refined for accurate PAG reconstruction in martensitic steel. A robust calibration strategy for CP parameters based on nanoindentation tests is developed by integrating analytical calculations with inverse methods. Virtual polycrystalline aggregates are subsequently generated by manipulating initial PAG orientations. The simulations reveal that assigning cube texture to PAGs enhances strain hardening of martensite under plane strain tension. Moreover, the RVEs with brass and copper orientated PAGs exhibit similar deformation behavior, and a more homogeneous strain distribution is realized in the RVE with PAG cube orientation. The influence of PAG orientation on stress and strain fields is correlated with lattice rotation behavior during deformation. Notably, different strain paths elicit distinct lattice rotation trajectories, wherein uniaxial tension and plane strain tension favor grains reorientation toward hard γ-fiber, whilst equi-biaxial tension drives the crystal matrix to concentrate on 001 and 011 directions. These findings provide insights into the intricate relationship between microstructural orientation and deformation behavior in martensitic steels, which is crucial for performance optimization.

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来源期刊
Materials & Design
Materials & Design Engineering-Mechanical Engineering
CiteScore
14.30
自引率
7.10%
发文量
1028
审稿时长
85 days
期刊介绍: Materials and Design is a multi-disciplinary journal that publishes original research reports, review articles, and express communications. The journal focuses on studying the structure and properties of inorganic and organic materials, advancements in synthesis, processing, characterization, and testing, the design of materials and engineering systems, and their applications in technology. It aims to bring together various aspects of materials science, engineering, physics, and chemistry. The journal explores themes ranging from materials to design and aims to reveal the connections between natural and artificial materials, as well as experiment and modeling. Manuscripts submitted to Materials and Design should contain elements of discovery and surprise, as they often contribute new insights into the architecture and function of matter.
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