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MICROSTRUCTURAL AND DYNAMIC MECHANICAL CHARACTERIZATION OF BIODEGRADABLE MAGNESIUM-CALCIUM ALLOY FOR ORTHOPEDIC IMPLANTS

机译:骨科植入物可生物降解镁钙合金的微观结构和动态力学特性

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Magnesium-Calcium (Mg-Ca) alloy is an emerging metallic biomaterial for manufacturing biodegradable orthopedic implants. However, very few studies have been conducted on mechanical properties of the bi-phase Mg-Ca alloy, especially at the high strain rates often encountered in manufacturing processes. The mechanical properties are critical to design and manufacturing of Mg-Ca implants. The objective of this study is to study the microstructural and mechanical properties of Mg-Ca0.8 (wt %) alloy. Both elastic and plastic behaviors of the Mg-Ca0.8 alloy were characterized at different strains and strain rates in quasi-static tension and compression testing as well as dynamic split-Hopkinson pressure bar (SHPB) testing. It has been shown that Young's modulus of Mg-Ca0.8 alloy in quasi-static compression is much higher than those at high strain rates. Yield strength and ultimate strength of the material are very sensitive to strain rates and increase with strain rate in compression. Strain softening also occurs at large strains in dynamic compression. Furthermore, quasi-static mechanical behavior of the material in tension is very different from that in compression. The stress-strain data was repeatable with reasonable accuracy in both deformation modes. In addition, a set of material constants for the internal state variable plasticity model has been obtained to model the dynamical mechanical behavior of the novel metallic biomaterial.
机译:镁钙(Mg-Ca)合金是一种新兴的金属生物材料,用于制造可生物降解的骨科植入物。但是,关于双相Mg-Ca合金的机械性能的研究很少,特别是在制造过程中经常遇到的高应变速率下。机械性能对于Mg-Ca植入物的设计和制造至关重要。这项研究的目的是研究Mg-Ca0.8(wt%)合金的显微组织和力学性能。在准静态拉伸和压缩测试以及动态分裂霍普金森压力棒(SHPB)测试中,Mg-Ca0.8合金的弹性和塑性行为都在不同的应变和应变速率下得到了表征。研究表明,Mg-Ca0.8合金在准静态压缩下的杨氏模量比在高应变速率下的杨氏模量高得多。材料的屈服强度和极限强度对应变率非常敏感,并随压缩应变率的增加而增加。在动态压缩中,大应变时也会发生应变软化。此外,材料在拉伸时的准静态机械行为与压缩时的静态行为非常不同。在两种变形模式下,应力-应变数据都可以以合理的精度重复。另外,已经获得了用于内部状态变量可塑性模型的一组材料常数,以对新型金属生物材料的动态力学行为进行建模。

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