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通过诱导预压缩和后续退火提高AZ31镁合金薄板的拉伸成形性

Enhanced Stretch Formability of AZ31 Magnesium Alloy Thin Sheet by Induced Precompression and Sequent Annealing.

作者信息

Wang Lifei, Song Bo, Zhang Zhengyong, Zhang Hua, Han Tingzhuang, Cao Xiaoqing, Wang Hongxia, Cheng Weili

机构信息

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

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

出版信息

Materials (Basel). 2018 Aug 10;11(8):1401. doi: 10.3390/ma11081401.

Abstract

In this study, precompression deformation with a strain level of 5.38% along the transverse direction (TD) at room temperature was conducted on a AZ31 magnesium alloy thin sheet with thickness of 1mm. Then subsequent annealing treatment was carried out at various temperatures (200, 300, 400, and 500 °C) to induce static recrystallization (SRX) and grain growth. The stretch formability was also investigated using the hemispherical test. The results showed that the twinning texture induced by the precompression process was nearly inherited by recrystallized grains after annealing process. Grains grew up and the size increased with the increase of annealing temperature. The largest grain size was obtained when annealing at 400 °C. The mechanical properties including strength and ductility decreased due to the development of coarse grains, however, the stretch formability was enhanced significantly. Indeed, the IE-value increased from 2.83 mm in the as-received Mg alloy sheet to 5.78 mm in the precompressed and 400 °C annealed specimens, leading to an improvement of 104%. This was ascribed to the rotated grain orientation and higher activity of (10⁻12) twins in coarse grains.

摘要

在本研究中,对厚度为1mm的AZ31镁合金薄板在室温下沿横向(TD)进行了应变水平为5.38%的预压缩变形。然后在不同温度(200、300、400和500℃)下进行后续退火处理,以诱导静态再结晶(SRX)和晶粒长大。还使用半球形试验研究了拉伸成形性。结果表明,预压缩过程诱导的孪晶织构在退火过程后几乎被再结晶晶粒继承。随着退火温度的升高,晶粒长大且尺寸增加。在400℃退火时获得最大晶粒尺寸。由于粗晶的形成,包括强度和延展性在内的力学性能下降,然而,拉伸成形性显著提高。实际上,IE值从原始镁合金板材的2.83mm增加到预压缩并在400℃退火的试样中的5.78mm,提高了104%。这归因于粗晶粒中晶粒取向的旋转和(10⁻12)孪晶的更高活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e05/6119984/dc5cece8e0de/materials-11-01401-g001.jpg

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