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与铜和锰合金化以及热处理对Zn-0.05Mg合金力学不稳定性的影响。

The effects of alloying with Cu and Mn and thermal treatments on the mechanical instability of Zn-0.05Mg alloy.

作者信息

Ardakani Morteza Shaker, Mostaed Ehsan, Sikora-Jasinska Malgorzata, Kampe Stephen L, Drelich Jaroslaw W

机构信息

Department of Materials Science and Engineering, Michigan Technological University, Houghton, MI 49931, USA.

出版信息

Mater Sci Eng A Struct Mater. 2020 Jan 7;770. doi: 10.1016/j.msea.2019.138529. Epub 2019 Oct 9.

Abstract

The detrimental effect of natural aging on mechanical properties of zinc alloys restricts their application as bioresorbable medical implants. In this study, aging of Zn-0.05Mg alloy and the effect of 0.5 Cu and 0.1 Mn (in weight percent) addition on the microstructure and tensile properties were studied. The alloys were cold rolled, aged and annealed; aiming to investigate the effects of precipitates and grain size on the mechanical properties and their stability. TEM analysis revealed that in ultrafine-grained binary Zn-0.05Mg alloy, the natural aging occurred due to the formation of nano-sized MgZn precipitates. After 90 days of natural aging, the yield strength and ultimate tensile strength of Zn-0.05Mg alloy increased from 197±4 MPa and 227±5 MPa to 233±8 MPa and 305±7 MPa, respectively, while the elongation was drastically reduced from 34±3% to 3±1%. This natural aging was retarded by adding the third element at either 0.1Mn or 0.5Cu quantities, which interacted with Mg in Zn solid solution and impeded the formation of MgZn precipitates. The addition of Cu and Mn elements increased alloy's strength, ductility, and its mechanical stability at a room temperature. The measured tensile strength and elongation were 274±5 MPa and 41±1% for Zn-0.1Mn-0.05Mg and 312±2 MPa and 44±2% for Zn-0.5Cu-0.05Mg, respectively. Annealing the alloys at elevated temperatures caused increase in both grain size and dissolution of secondary phases, and both affected alloy deformation mechanisms.

摘要

自然老化对锌合金力学性能的不利影响限制了它们作为生物可吸收医用植入物的应用。在本研究中,对Zn-0.05Mg合金的时效以及添加0.5%Cu和0.1%Mn(重量百分比)对其微观结构和拉伸性能的影响进行了研究。对合金进行冷轧、时效和退火处理,旨在研究析出相和晶粒尺寸对力学性能及其稳定性的影响。透射电子显微镜分析表明,在超细晶粒二元Zn-0.05Mg合金中,由于形成了纳米尺寸的MgZn析出相而发生自然时效。自然时效90天后,Zn-0.05Mg合金的屈服强度和抗拉强度分别从197±4MPa和227±5MPa提高到233±8MPa和305±7MPa,而伸长率则从34±3%急剧降至3±1%。通过添加0.1%Mn或0.5%Cu量的第三种元素可延缓这种自然时效,这些元素与锌固溶体中的镁相互作用,阻碍了MgZn析出相的形成。添加Cu和Mn元素提高了合金在室温下的强度、延展性及其力学稳定性。Zn-0.1Mn-0.05Mg合金的实测抗拉强度和伸长率分别为274±5MPa和41±1%,Zn-0.5Cu-0.05Mg合金的实测抗拉强度和伸长率分别为312±2MPa和44±2%。在高温下对合金进行退火会导致晶粒尺寸增大和第二相溶解,两者都会影响合金的变形机制。

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