镁锰合金温轧织构演变与成形性能研究
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辽宁科技大学 机械工程与自动化学院,辽宁 鞍山 114100

作者简介:

葛昊(2002—),辽宁朝阳人,本科,主要研究方向为机械工程。

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TG172

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辽宁科技大学大学生创新创业训练计划项目资助(S202410146051);辽宁省教育厅重点项目资助(LJKZ0281)


Research on texture evolution and forming performance of magnesium-manganese alloy during warm rolling
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University of Science and Technology Liaoning, School of Mechanical Engineering and Automation, Anshan 114100 , China

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    摘要:

    分析镁锰合金薄板温轧过程织构演变与室温成形性能,对开发高性能的镁合金工业材料具有重要意义。本研究对采用同步轧制技术成型的镁锰合金再次进行大下压量异步温轧,从镁合金板材织构弱化的机理出发,通过轧制前后的晶体塑性理论,构建镁锰合金有限元本构模型;由拉伸,杯突及刚模胀形等试验来讨论轧制方法对于镁合金板材机械特性及成型特性的特定影响。经测定,各方向、各向异性在轧制前后板材无明显变化,但织构分布有明显变化,部分晶粒在ND方向上发生明显转动;初始薄板基面织构的极密度为29.49mud,而轧后为15.57mud,基面织构的极密度峰值降低,强度分布发散,薄板基织构变弱。异步温轧板材的抗拉强度最高为253.9MPa,延伸率最大为10.9%;在室温的环境中,板材的变形幅度是相对较小的,杯突的最大值可达到2.7mm。经过刚模胀形的试验操作,绘制了温轧板材的成形极限图(FLD),并采用有限元分析法模拟刚模胀形的试验,并将模拟数据与试验数据的FLD进行了比较,两者在成形极限上是高度一致的。异步温轧板材变形时,晶粒的转动和再结晶弱化织构,提高了板材成形性能,为开发高性能镁合金薄板甚至箔材提供可能。

    Abstract:

    Analyzing the texture evolution and room-temperature formability of magnesium-manganese alloy thin sheets during warm rolling is of great significance for the development of high-performance magnesium alloy industrial materials. In this study, magnesium-manganese alloy sheets formed by synchronous rolling technology were subjected to large reduction asynchronous warm rolling. Starting from the mechanism of texture weakening in magnesium alloys, a finite element constitutive model of magnesium-manganese alloy was constructed based on the crystal plasticity theory before and after rolling. The tensile, cupping, and rigid die bulging tests were conducted to discuss the specific effects of the above rolling methods on the mechanical and formability properties of magnesium alloy sheets. It was found that there were no significant changes in the texture anisotropy in all directions before and after rolling, but the texture distribution changed significantly, and some grains rotated obviously in the ND direction. The pole density of the basal texture of the initial thin sheet was 29.49mud, while that after rolling was 15.57mud. The peak value of the pole density of the basal texture decreased, and the intensity distribution became more dispersed, indicating that the basal texture of the sheet weakened. The tensile strength of the asynchronous warm rolled sheet was up to 253.9MPa, and the maximum elongation was 10.9%. In a room-temperature environment, the deformation amplitude of the sheet was relatively small, and the maximum cupping depth could reach 2.7mm. The forming limit diagram (FLD) of the warm rolled sheet was drawn through the rigid die bulging experiment. The rigid die bulging experiment was simulated by the finite element analysis method, and the simulation data were compared with the numerical simulation FLD. The results showed that the two were highly consistent in the forming limit. Asynchronous warm rolling weakens the texture by the rotation and recrystallization of grains during sheet deformation, thereby improving the formability of the sheet, providing a possibility for the development of high-performance magnesium alloy thin sheets and even foils.

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葛昊,夏琪,陈明,等.镁锰合金温轧织构演变与成形性能研究[J].有色设备,2025,39(4):58-68.

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  • 收稿日期:2025-01-20
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  • 在线发布日期: 2025-11-13
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