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奥氏体不锈钢膨胀变形的低塑性行为研究

Study on the Low Plastic Behavior of Expansion Deformation of Austenitic Stainless Steel.

作者信息

Wan Chenglei, Wu Wei, Zhang Xuedi, Zhang Lulu, Song Kaihong

机构信息

School of Materials Science and Engineering, Hebei University of Technology, Tianjin 300401, China.

出版信息

Materials (Basel). 2024 Apr 23;17(9):1955. doi: 10.3390/ma17091955.

Abstract

The plastic deformation of TWIP steel is greatly inhibited during the expansion process. The stress-strain curves obtained through expansion experiments and observations of fracture morphology confirmed the low plastic behavior of TWIP steel during expansion deformation. Through an analysis of the mechanical expansion model, it was found that the expansion process has a lower stress coefficient and a faster strain rate than stretching, which inhibits the plasticity of TWIP steel during expansion deformation. Using metallographic microscopy, transmission electron microscopy, and EBSD to observe the twin morphology during expansion deformation and tensile deformation, it was found that expansion deformation has a higher twin density, which is manifested in a denser twin arrangement and a large number of twin deliveries in the microscopic morphology. During the expansion deformation process, dislocation slips are hindered by twins, the free path of the slips is reduced, and dislocations accumulate significantly. The accumulation area is the initial point of crack expansion. The results show that the significant dislocation accumulation caused by the delivery of a large number of twins under expansion deformation is the main reason for the decrease in the plasticity of TWIP steel.

摘要

TWIP钢在扩径过程中的塑性变形受到极大抑制。通过扩径实验获得的应力-应变曲线以及断口形貌观察证实了TWIP钢在扩径变形过程中的低塑性行为。通过对机械扩径模型的分析发现,扩径过程比拉伸具有更低的应力系数和更快的应变率,这抑制了TWIP钢在扩径变形过程中的塑性。利用金相显微镜、透射电子显微镜和电子背散射衍射(EBSD)观察扩径变形和拉伸变形过程中的孪晶形貌,发现扩径变形具有更高的孪晶密度,这在微观形貌上表现为孪晶排列更密集以及大量的孪晶交割。在扩径变形过程中,位错滑移受到孪晶阻碍,滑移自由程减小,位错显著累积。累积区域是裂纹扩展的起始点。结果表明,扩径变形下大量孪晶交割导致的显著位错累积是TWIP钢塑性降低的主要原因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/892c/11084637/be55e13e1514/materials-17-01955-g001.jpg

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