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Thermal oxidation of medical Ti6Al4V blasted with ceramic particles: Effects on the microstructure, residual stresses and mechanical properties

机译:用陶瓷颗粒喷射的医用Ti6Al4V的热氧化:对微观结构,残余应力和力学性能的影响

摘要

© 2015 Elsevier Ltd. Roughening of Ti6Al4V by blasting with alumina or zirconia particles improves the mechanical fixation of implants by increasing the surface area available for bone/implant apposition. Additional thermal oxidation treatments of the blasted alloy have already shown to be a complementary low-cost solution to enhancing the in vitro biocompatibility and corrosion resistance of the alloy. In this work, the effects of oxidation treatment on a grit blasted Ti6Al4V biomedical alloy have been analysed in order to understand the net effect of the combined treatments on the alloy fatigue properties. Synchrotron radiation diffraction experiments have been performed to measure residual stresses before and after the treatments and microstructural and hardness changes have been determined. Although blasting of Ti6Al4V with small spherical zirconia particles increases the alloy fatigue resistance with respect to unblasted specimens, fatigue strength after oxidation decreases below the unblasted value, irrespective of the type of particle used for blasting. Moreover, at 700. °C the as-blasted compressive residual stresses (700. MPa) are not only fully relaxed but even moderate tensile residual stresses, of about 120. MPa, are found beneath the blasted surfaces. Contrary to expectations, a moderate increase in hardness occurs towards the blasted surface after oxidation treatments. This can be attributed to the fact that grit blasting modifies the crystallographic texture of the Ti6Al4V shifting it to a random texture, which affects the hardness values as shown by additional experiments on cold rolled samples. The results indicate that the oxidation treatment performed to improve biocompatibility and corrosion resistance of grit blasted Ti6Al4V should be carried out with caution since the alloy fatigue strength can be critically diminished below the value required for high load-bearing components.
机译:©2015 Elsevier Ltd.通过用氧化铝或氧化锆颗粒喷砂来粗化Ti6Al4V,可通过增加可用于骨骼/植入物并置的表面积来改善植入物的机械固定性。喷砂合金的其他热氧化处理已经显示出是一种补充性的低成本解决方案,可以提高合金的体外生物相容性和耐腐蚀性。在这项工作中,分析了氧化处理对喷砂处理的Ti6Al4V生物医学合金的影响,以便了解组合处理对合金疲劳性能的净影响。已经进行了同步辐射衍射实验来测量处理前后的残余应力,并确定了显微组织和硬度的变化。尽管用小的球形氧化锆颗粒喷射Ti6Al4V相对于未喷射的试样可以提高合金的抗疲劳性,但氧化后的疲劳强度会降低到未喷射的值以下,而与用于喷射的颗粒类型无关。此外,在700°C时,喷砂压缩残余应力(700. MPa)不仅完全松弛,而且在喷砂表面之下甚至发现了大约120. MPa的中等拉伸残余应力。与预期相反,氧化处理后朝向喷砂表面的硬度适度增加。这可以归因于以下事实:喷砂会改变Ti6Al4V的晶体织构,使其变为随机织构,这会影响硬度值,如冷轧样品上的其他实验所示。结果表明,为提高喷砂处理的Ti6Al4V的生物相容性和耐腐蚀性而进行的氧化处理应谨慎进行,因为合金的疲劳强度可大大降低,低于高承载组件所需的值。

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