Department of Mechanical Engineering, Politecnico di Milano, 20156 Milan, Italy.
Acta Biomater. 2013 Nov;9(10):8604-10. doi: 10.1016/j.actbio.2013.01.010. Epub 2013 Jan 17.
An investigation was carried out on equal-channel angular pressing (ECAP) and extrusion processing of a ZM21 Mg alloy to obtain an improved candidate material for the manufacturing of biodegradable Mg stents. Ultrafine-grain size billets of the ZM21 alloy were obtained by two-stage ECAP aimed at achieving an initial refining of the structure at 200°C and then reaching the submicrometer grain size range by lowering the processing temperature down to 150°C. The investigation revealed a significant improvement in the properties of the ECAP-treated samples compared with the starting coarse-grained ZM21 alloy. The 0.2% yield strength rose from 180 to 340 MPa after 150°C ECAP processing, while maintaining a fairly high tensile ductility. The ultrafine ZM21 alloy billets were then used for the extrusion of stent precursors having the form of small-size tubes. The grain size after extrusion remained in the submicrometer range while the hardness was revealed to be significantly higher than that of the coarse-grained ZM21 Mg alloy. It was demonstrated that processing of biodegradable Mg stent having an ultrafine-grained microstructure by ECAP and low-temperature extrusion is feasible and that the obtained products feature promising properties.
对 ZM21 镁合金进行等径角挤压(ECAP)和挤压加工的研究,以获得用于制造可生物降解镁支架的改进候选材料。通过旨在 200°C 实现初始细化结构的两阶段 ECAP 获得 ZM21 合金的超细晶粒坯料,然后将加工温度降低到 150°C 以达到亚微米晶粒尺寸范围。研究表明,与起始粗晶粒 ZM21 合金相比,ECAP 处理样品的性能有了显著提高。在 150°C ECAP 加工后,0.2%屈服强度从 180MPa 升高到 340MPa,同时保持相当高的拉伸延展性。然后,将超细 ZM21 合金坯料用于挤出具有小管形状的支架前体。挤压后的晶粒尺寸仍保持在亚微米范围内,而硬度明显高于粗晶粒 ZM21 Mg 合金。结果表明,通过 ECAP 和低温挤压加工具有超细晶粒微观结构的可生物降解镁支架是可行的,并且获得的产品具有有前途的性能。