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镁合金轧制过程中裂纹扩展的萌生与抑制

Initiation and Suppression of Crack Propagation during Magnesium Alloy Rolling.

作者信息

Tian Jing, Shi Quan-Xin, Meng Li-Xin, Deng Jia-Fei, Liang Wei, Ma Jin-Yao

机构信息

College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, China.

Shanxi Key Laboratory of Advanced Magnesium-Based Materials, Taiyuan University of Technology, Taiyuan 030024, China.

出版信息

Materials (Basel). 2021 Sep 10;14(18):5217. doi: 10.3390/ma14185217.

Abstract

The conventional rolling of magnesium alloy with a single pass and large reduction will cause severe edge cracking. The sheet without cracks can be achieved by limited width rolling. The microstructure evolution of the sheet with cracks after conventional rolling and the sheet without cracks after limited width rolling is explored, and an effective mechanism for solving edge cracks is proposed. Conventional rolling can fully develop twin evolution due to high deformation, and three stages of twinning evolution can be observed and the secondary twins easily become the nucleation points of micro cracks, resulting in a large number of cracks propagating along the twin lamellae. Cracks terminate at dislocation accumulation because the accumulation of a large number of dislocations can hinder propagation. Dislocation shearing of twins to eliminate the high localization caused by twins and induce the tensile twins to weaken the basal surface texture provides an effective plastic deformation mechanism of crack inhibition, which is useful for expanding the engineering application of magnesium alloy rolled sheets.

摘要

镁合金单道次大压下量的常规轧制会导致严重的边缘开裂。通过有限宽度轧制可获得无裂纹板材。探究了常规轧制后有裂纹板材和有限宽度轧制后无裂纹板材的微观组织演变,并提出了一种解决边缘裂纹的有效机制。常规轧制由于高变形能充分发展孪晶演变,可观察到孪晶演变的三个阶段,且二次孪晶容易成为微裂纹的形核点,导致大量裂纹沿孪晶薄片扩展。裂纹在位错堆积处终止,因为大量位错的堆积会阻碍裂纹扩展。孪晶的位错剪切消除孪晶引起的高局部化并诱导拉伸孪晶以弱化基面织构,提供了一种有效的抑制裂纹的塑性变形机制,这对于扩大镁合金轧制板材的工程应用具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9637/8467149/88a603876466/materials-14-05217-g001.jpg

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