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Thermal exposure effects on the in vitro degradation and mechanical properties of Mg-Sr and Mg-Ca-Sr biodegradable implant alloys and the role of the microstructure

机译:热暴露对Mg-Sr和Mg-Ca-Sr可生物降解植入合金的体外降解和力学性能的影响以及微观结构的作用

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摘要

Magnesium is an attractive biodegradable material for medical applications due to its non-toxicity, low density and good mechanical properties. The fast degradation rate of magnesium can be tailored using alloy design. The combined addition of Sr and Ca results in a good combination of mechanical and corrosion properties; the alloy compositions with the best performance are Mg-0.5Sr and Mg-0.3Sr-0.3Ca. In this study, we investigated an important effect, namely thermal treatment (at 400 ℃), on alloy properties. The bio-corrosion of the alloys was analyzed via in vitro corrosion tests in simulated body fluid (SBF); the mechanical properties were studied through tensile, compression and three-point bending tests in two alloy conditions, as-cast and heat-treated. We showed that 8 h of heat treatment increases the corrosion rate of Mg-0.5Sr very rapidly and decreases its mechanical strength. The same treatment does not significantly change the properties of Mg-0.3Sr-0.3Ca. An in-depth microstructural investigation via transmission electron microscopy, scanning electron microscopy, electron probe micro-analysis and X-ray diffraction elucidated the effects of the thermal exposure. Microstructural characterization revealed that Mg-03Sr-0.3Ca has a new intermetallic phase that is stable after 8 h of thermal treatment Longer thermal exposure (24 h) leads to the dissolution of this phase and to its gradual transformation to the equilibrium phase Mg_(17)Sr_2, as well as to a loss of mechanical and corrosion properties. The ternary alloy shows better thermal stability than the binary alloy, but the manufacturing processes should aim to not exceed exposure to high temperatures (400 ℃) for prolonged periods (over 24 h).
机译:镁由于其无毒,低密度和良好的机械性能,是一种在医学上有吸引力的可生物降解材料。镁的快速降解速率可以使用合金设计进行调整。 Sr和Ca的组合添加可将机械性能和腐蚀性能很好地结合在一起。性能最好的合金成分是Mg-0.5Sr和Mg-0.3Sr-0.3Ca。在这项研究中,我们研究了一种重要的影响,即热处理(400℃)对合金性能的影响。通过在模拟体液(SBF)中进行的体外腐蚀测试分析了合金的生物腐蚀。在铸造和热处理两种合金条件下,通过拉伸,压缩和三点弯曲试验研究了力学性能。我们表明,热处理8小时可以非常迅速地提高Mg-0.5Sr的腐蚀速率,并降低其机械强度。相同的处理不会显着改变Mg-0.3Sr-0.3Ca的性能。通过透射电子显微镜,扫描电子显微镜,电子探针显微分析和X射线衍射进行的深入微观结构研究阐明了热暴露的影响。显微组织表征表明,Mg-03Sr-0.3Ca具有一个新的金属间相,该相在热处理8 h后保持稳定。更长的热暴露时间(24 h)导致该相溶解并逐渐转变为平衡相Mg_(17 )Sr_2,以及机械性能和腐蚀性能的损失。三元合金显示出比二元合金更好的热稳定性,但是制造过程的目标应是长时间(24小时以上)不暴露于高温(400℃)。

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