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Exceptional Strengthening of Biodegradable Mg-Zn-Ca Alloys through High Pressure Torsion and Subsequent Heat Treatment

机译:通过高压扭转和后续热处理异常增强可生物降解的Mg-Zn-Ca合金

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摘要

In this study, two biodegradable Mg-Zn-Ca alloys with alloy content of less than 1 wt % were strengthened via high pressure torsion (HPT). A subsequent heat treatment at temperatures of around 0.45 Tm led to an additional, sometimes even larger increase in both hardness and tensile strength. A hardness of more than 110 HV and tensile strength of more than 300 MPa were achieved in Mg-0.2Zn-0.5Ca by this procedure. Microstructural analyses were conducted by scanning and transmission electron microscopy (SEM and TEM, respectively) and atom probe tomography (APT) to reveal the origin of this strength increase. They indicated a grain size in the sub-micron range, Ca-rich precipitates, and segregation of the alloying elements at the grain boundaries after HPT-processing. While the grain size and segregation remained mostly unchanged during the heat treatment, the size and density of the precipitates increased slightly. However, estimates with an Orowan-type equation showed that precipitation hardening cannot account for the strength increase observed. Instead, the high concentration of vacancies after HPT-processing is thought to lead to the formation of vacancy agglomerates and dislocation loops in the basal plane, where they represent particularly strong obstacles to dislocation movement, thus, accounting for the considerable strength increase observed. This idea is substantiated by theoretical considerations and quenching experiments, which also show an increase in hardness when the same heat treatment is applied.
机译:在这项研究中,通过高压扭转(HPT)增强了两种可生物降解的Mg-Zn-Ca合金,合金含量小于1 wt%。随后在约0.45 Tm的温度下进行热处理导致硬度和抗拉强度的增加,有时甚至更大。通过该程序,在Mg-0.2Zn-0.5Ca中获得了大于110HV的硬度和大于300MPa的拉伸强度。通过扫描和透射电子显微镜(分别为SEM和TEM)和原子探针层析成像(APT)进行显微结构分析,以揭示这种强度增加的原因。他们表明,HPT加工后,晶粒尺寸在亚微米范围内,富含Ca的沉淀,合金元素在晶界偏析。尽管在热处理过程中晶粒尺寸和偏析基本保持不变,但沉淀物的尺寸和密度却略有增加。但是,使用Orowan型方程式进行的估算表明,沉淀硬化无法解释观察到的强度增加。取而代之的是,HPT处理后空位的高度集中会导致在基面上形成空位团聚体和位错环,它们在位错运动中表现出特别强烈的障碍,因此,观察到了相当大的强度增加。理论上的考虑和淬火实验证实了这一想法,当进行相同的热处理时,淬火实验也显示出硬度的增加。

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