基于多尺度框架的晶体塑性建模以及通过 3D-FBF 技术制造的 AISI 304 不锈钢微管变形行为的纹理演化

IF 8.6 2区 工程技术 Q1 ENERGY & FUELS
Peng Zhao , Cheng Cheng , Ali Abd El-Aty , Jie Tao , Xunzhong Guo , Yuting Ji
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引用次数: 0

摘要

晶粒尺寸通常会影响微尺度微成型产品的精度和质量。宏观尺度的有限元建模(FEM)无法准确预测微观尺度的非均匀变形和微结构演变。此外,微尺度有限元模型对于具有复杂加载边界条件的成形过程也具有挑战性。因此,本研究提出了一种基于多尺度框架的 CPFEM,用于研究通过 3D-FBF 工艺制造的微管的变形行为。获得的结果表明,较大的几何尺寸和较小的晶粒尺寸会在宏观上增加微管的弯曲半径,从而导致明显的不均匀变形。此外,偏移量越大,流动应力越大,晶格旋转角度越大,微管的弯曲半径也就越大,而晶粒取向也会影响弯曲变形,易变形的晶粒取向会导致晶粒内应力分布更大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiscale framework-based crystal plasticity modeling and texture evolution of the deformation behavior of AISI 304 stainless steel microtubes manufactured through 3D-FBF technology
The grain size often influences the precision and quality of products manufactured by microforming at the microscale. Macroscale finite element modeling (FEM) cannot accurately predict nonuniform deformation and microstructural evolution at the microscale. In addition, the microscale FEM is challenging for forming processes with complex loading boundary conditions. Thus, in this study, a multiscale framework-based CPFEM is proposed to study the deformation behavior of microtubes manufactured through the 3D-FBF process. The acquired results show that significant nonuniform deformation is caused by greater geometric dimensions and smaller grain sizes, which increase the bending radius of microtubes at the macro level. In addition, a larger offset leads to higher flow stress, larger lattice rotation angles, and consequently, a larger bending radius for the microtube, and grain orientation also influences bending deformation, with easily deformable grain orientations leading to greater stress distribution within the grains.
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来源期刊
Sustainable Materials and Technologies
Sustainable Materials and Technologies Energy-Renewable Energy, Sustainability and the Environment
CiteScore
13.40
自引率
4.20%
发文量
158
审稿时长
45 days
期刊介绍: Sustainable Materials and Technologies (SM&T), an international, cross-disciplinary, fully open access journal published by Elsevier, focuses on original full-length research articles and reviews. It covers applied or fundamental science of nano-, micro-, meso-, and macro-scale aspects of materials and technologies for sustainable development. SM&T gives special attention to contributions that bridge the knowledge gap between materials and system designs.
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