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可生物降解ZnMg0.8Ca0.2合金的挤压——挤压参数对微观结构和力学特性的影响

Extrusion of the biodegradable ZnMg0.8Ca0.2 alloy - The influence of extrusion parameters on microstructure and mechanical characteristics.

作者信息

Čapek Jaroslav, Kubásek Jiří, Pinc Jan, Drahokoupil Jan, Čavojský Miroslav, Vojtěch Dalibor

机构信息

FZU - The Institute of Physics of the Czech Academy of Sciences, Na Slovance 1999/2, Prague 8, 182 21, Czech Republic.

Institute of Metals and Corrosion Engineering, University of Chemistry and Technology, Technická 6, Prague 6, 166 28, Czech Republic.

出版信息

J Mech Behav Biomed Mater. 2020 Aug;108:103796. doi: 10.1016/j.jmbbm.2020.103796. Epub 2020 Apr 19.

Abstract

The Zn-based alloys, alloyed with the elements of the 2nd group of the periodic table, are considered as potential biodegradable materials suitable for the fabrication of small orthopaedic implants or cardiovascular stents. Unfortunately, the as-cast Zn-based alloys do not fulfil the requirements for mechanical properties for such applications. Extrusion is a thermomechanical process which is very powerful for breaking the cast microstructure and enhancing mechanical characteristics of metallic materials. In this study, we focused on the influence of extrusion parameters, such as temperature and extrusion ratio, on microstructural and mechanical characteristics of a ZnMg0.8Ca0.2 (wt.%) alloy. The extrusion led to a significant grain refinement and the formation of a crystallographic texture. Extrusion temperature played a more significant role in the mean grain size compared to the extrusion ratio (ER). At lower extrusion temperatures, the texture was less intensive and the subsequent mechanical anisotropy was weaker. Constants for the prediction of the grain size based on the Zener-Hollomon parameter were obtained. Prediction of mechanical properties using the Hall-Petch relationship appeared to be difficult because of the dependence of the texture on the extrusion temperature. Extrusion at the temperatures of 200 °C (ER = 25:1) and 150 °C (ER = 11:1) led to mechanical performance fulfilling the requirements for implantology.

摘要

与元素周期表第2族元素合金化的锌基合金被认为是适合制造小型骨科植入物或心血管支架的潜在可生物降解材料。不幸的是,铸态锌基合金不能满足此类应用的机械性能要求。挤压是一种热机械工艺,对于破坏铸造微观结构和提高金属材料的机械性能非常有效。在本研究中,我们重点关注挤压参数(如温度和挤压比)对ZnMg0.8Ca0.2(重量百分比)合金微观结构和机械性能的影响。挤压导致显著的晶粒细化和晶体织构的形成。与挤压比(ER)相比,挤压温度对平均晶粒尺寸的影响更大。在较低的挤压温度下,织构强度较低,随后的机械各向异性也较弱。获得了基于齐纳-霍洛蒙参数预测晶粒尺寸的常数。由于织构对挤压温度的依赖性,使用霍尔-佩奇关系预测机械性能似乎很困难。在200°C(ER = 25:1)和150°C(ER = 11:1)的温度下进行挤压,可使机械性能满足植入学的要求。

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