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高压扭转对Mg-3Zn-1Ca-0.5Sr合金组织和第二相分布的影响
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1.中国有研科技集团有限公司 有色金属材料制备加工国家重点实验室,北京 100088;2.有研工程技术研究院有限公司,北京 101407;3.北京有色金属研究总院,北京 100088

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国家重点研发计划(2021YFB3701004)


Effect of High-Pressure Torsion on Microstructure and Secondary Phase Distribution of Mg-3Zn-1Ca-0.5Sr Alloy
Author:
Affiliation:

1.State Key Laboratory of Nonferrous Metals and Processes, China GRINM Group Co., Ltd, Beijing 100088, China;2.GRIMAT Engineering Institute Co., Ltd, Beijing 101407, China;3.General Research Institute for Nonferrous Metals, Beijing 100088, China

Fund Project:

National Key Research and Development Program of China (2021YFB3701004)

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    摘要:

    近年来,以镁及镁合金为代表的可降解金属,因具有良好的生物相容性、适宜的弹性模量及可降解的特性,逐渐成为了骨折内固定及骨缺损修复材料的研究热点。生物可降解骨植入用Mg-3Zn-1Ca-0.5Sr(wt%)合金,因其具有全营养元素组成的特点及良好的力学性能,是非常具有应用潜力的医用金属材料。但由于该合金中存在粗大的第二相,合金的降解速率过快,植入时存在产气严重的现象,限制了其临床推广和应用。为了进一步优化该合金的性能,采用挤压复合高压扭转对其进行变形加工。结果表明,通过优化材料加工手段,可以细化和破碎晶粒并改善第二相分布,从而改善合金的组织,进而提升合金的力学和耐腐蚀性能。经过15周次高压扭转处理,合金晶粒细化到纳米级别,达到98 nm左右,流线组织消失,第二相破碎后呈弥散分布。显微组织的这种变化导致合金的组织均匀性提高,同时显著强化合金,硬度从挤压态的60.3 HV增加到98.5 HV。

    Abstract:

    Degradable metals, represented by magnesium and magnesium alloys, have attracted significant attention as fracture internal fixation and bone defect repairing materials due to their good biocompatibility, suitable elastic modulus and degradable properties. The Mg-3Zn-1Ca-0.5Sr (wt%) alloy is considered a competitor in the biomaterial field thanks to its unique composition of essential nutrients and excellent mechanical properties. However, the presence of coarse second-phase particles in the alloy accelerates its degradation rate and causes excessive gas formation during implantation, which restricts the alloy's potential for clinical device applications. In order to further optimize the properties of the alloy, extrusion combined with high-pressure torsion (HPT) was adopted for deformation processing. The results show that by optimizing the material processing means, the grain can be refined and broken, and the second-phase distribution can be improved, thus improving the microstructure, mechanical properties, and corrosion resistance of the alloy. After 15 cycles of HPT processing, the grains of the alloy are significantly refined to the nanometer scale, reaching approximately 98 nm. Additionally, the second-phase distribution is greatly improved, transforming the original streamlined structure into a more dispersed distribution. This change in microstructure leads to a significant strengthening effect on the alloy, with a noticeable increase in hardness from 60.3 HV in the as-extruded state to 98.5 HV.

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张家振,马鸣龙,张奎,李永军,李兴刚,石国梁,袁家伟,孙昭乾,史文鹏.高压扭转对Mg-3Zn-1Ca-0.5Sr合金组织和第二相分布的影响[J].稀有金属材料与工程,2025,54(6):1457~1461.[Zhang jiazhen, Ma minglong, Zhang kui, Li yongjun, Li xinggang, Shi guoliang, Yuan jiawei, Sun zhaoqian, Shi wenpeng. Effect of High-Pressure Torsion on Microstructure and Secondary Phase Distribution of Mg-3Zn-1Ca-0.5Sr Alloy[J]. Rare Metal Materials and Engineering,2025,54(6):1457~1461.]
DOI:10.12442/j. issn.1002-185X.20240272

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历史
  • 收稿日期:2024-05-09
  • 最后修改日期:2024-05-28
  • 录用日期:2024-06-04
  • 在线发布日期: 2025-06-10
  • 出版日期: 2025-06-09