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预循环拉伸-压缩载荷下FCC多晶铝塑性流动行为的研究:实验与晶体塑性建模

Investigation on Plastic Flow Behaviors of FCC Polycrystalline Aluminum under Pre-Cyclic Tension-Compression Loading: Experiments and Crystal Plasticity Modeling.

作者信息

Lu Damin, Zhang Keshi, Hu Guijuan

机构信息

Key Laboratory of Disaster Prevention and Structural Safety/Guangxi Key Lab Disaster Prevention and Engineering Safety, College of Civil and Architectural Engineering, Guangxi University, Nanning 530004, China.

School of Landscape Architecture, Zhejiang A & F University, Hangzhou 311300, China.

出版信息

Nanomaterials (Basel). 2021 Sep 14;11(9):2397. doi: 10.3390/nano11092397.

Abstract

The plastic flow behaviors of FCC polycrystalline aluminum after pre-cyclic tension-compression deformation are mainly investigated in tension-torsion stress space by the physically based crystal plasticity model introducing a back-stress. A global finite element model (GFEM) constructed of sufficient grains was established to simulate the same-size thin-walled tube specimen constrained and loaded as the experiments of yield surfaces. The computational results showed that the shape of subsequent yield surfaces and the plastic flow directions directly depended on the given offset strain levels and the applied re-loading paths under different pre-cyclic deformations. The angle deviation between the plastic flow direction and the theoretical orthogonal direction further indicated that there was a large difference between them in the inverse pre-straining direction, but the difference was negligible in the pre-straining direction. From the influence of the anisotropic evolution of the subsequent yield surfaces on plastic flow, we found that the plastic normality rule followed the smooth yield locus; conversely, the significant non-associated flow was attributed to the distorted yield locus. Furthermore, it was also demonstrated that the anisotropic evolution and the plastic flow trend of the subsequent yield surfaces obtained by experiments can be better reproduced by the crystal plasticity model.

摘要

通过引入背应力的基于物理的晶体塑性模型,主要在拉扭应力空间中研究了面心立方(FCC)多晶铝在预循环拉压变形后的塑性流动行为。建立了由足够晶粒组成的全局有限元模型(GFEM),以模拟与屈服面实验相同尺寸的薄壁管试样的约束和加载情况。计算结果表明,在不同的预循环变形下,后续屈服面的形状和塑性流动方向直接取决于给定的偏移应变水平和施加的重新加载路径。塑性流动方向与理论正交方向之间的角度偏差进一步表明,它们在反向预应变方向上存在很大差异,但在预应变方向上差异可忽略不计。从后续屈服面的各向异性演化对塑性流动的影响来看,我们发现塑性正交流动法则遵循光滑的屈服轨迹;相反,显著的非关联流动归因于扭曲的屈服轨迹。此外,还表明晶体塑性模型能够更好地再现实验得到的后续屈服面的各向异性演化和塑性流动趋势。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e3b/8469240/71cfd8d15f5a/nanomaterials-11-02397-g001.jpg

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