首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Fretting corrosion behaviour of Ti-6Al-4V reinforced with zirconia in foetal bovine serum
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Fretting corrosion behaviour of Ti-6Al-4V reinforced with zirconia in foetal bovine serum

机译:用胎儿牛血清氧化锆加固Ti-6Al-4V的腐蚀行为

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Fretting corrosion is a critical challenge in the design of hip prosthesis used in total hip arthroplasty (THA) surgeries. Currently, the design of hip implants includes a tapered junction which introduces additional interfaces that connect different parts of the hip implant such as the femoral neck and head or stem and neck interface. Micro motions that occur under the influence of load, together with chemical changes in the host environment, make these interfaces susceptible to tribocorrosion processes, particularly fretting corrosion. Commonly used metallic biomaterials are based on stainless steels, cobalt chrome-based alloys as well as titanium and titanium alloys. Each of these materials possess some degree of limitations, particularly where tribocorrosion events are concerned. Titanium alloy Ti-6Al-4V is widely used in biomedical applications for nonbearing components of total joint arthroplasty (TJA) surgeries. Its poor wear resistance continues to remain a challenge in load-bearing joints where parts articulate against one another as in the case of modular junctions. Some of the attempts made to improve the wear properties of Ti-6Al-4V is through the incorporation of second phase particles like ceramics in its matrix to produce metal matrix composites of Ti-6Al-4V. The aim of this work is to investigate the effect of zirconia reinforcement on spark plasma sintered Ti-6Al-4V composites (zirconium oxide particles incorporated into Ti-6Al-4V matrix) on the fretting corrosion properties of Ti-6Al-4V. Fretting corrosion tests were carried out on as-sintered Ti-6A1-4V and Ti-6Al-4V with 5 and 10 wt.% ZrO2. The tests were carried out in foetal bovine serum under applied normal loads of 85 and 115 N using the cylinder-on-flat contact configuration. The evolution of OCP, dissipated energy and friction coefficient were recorded throughout the test. Microstructural analysis of the samples before fretting corrosion tests showed the presence of globular agglomerates throughout the Ti-6A1-4V matrix due to zirconia additions; the volume of the agglomerates was higher in the composites having 10 wt.% ZrO2. Ti-6Al-4V composites having zirconia additions produced a nobler OCP during fretting in foetal bovine serum, compared to pure Ti-6Al-4V. Furthermore, the fretting corrosion results showed a significant improvement in the tribocorrosion resistance of Ti-6Al-4V with 10 wt.% ZrO2 at all loads. This composition also produced the least amount of degradation. and metal ion release. Mechanical data showed that increasing the applied normal load promoted a transition from gross slip to partial slip conditions for all compositions. Partial slip was found to be prevalent at a higher normal load (drastic decrease of the dissipated energy and consequently the friction coefficient). This mechanical condition prevents a large amount of degradation.
机译:烦恼腐蚀是在总髋关节置换术(THA)手术中使用的髋关节假体设计中的一个关键挑战。目前,臀部植入物的设计包括锥形连接,其引入连接臀部植入物的不同部分的附加接口,例如股骨颈和头部或杆和颈部界面。在负荷影响下发生的微动机,以及宿主环境中的化学变化,使这些易受Tribocorion工艺的界面,特别是微腐蚀。常用的金属生物材料基于不锈钢,钴铬基合金以及钛和钛合金。这些材料中的每一个都具有一定程度的局限性,特别是在涉及的牵引事件的情况下。钛合金TI-6AL-4V广泛应用于生物医学应用中,用于总关节关节成形术(TJA)手术的不承受组件。其耐磨性较差的耐受性继续仍然是承载接头中的挑战,其中零件在模块化交叉点的情况下彼此铰接。提高Ti-6AL-4V的磨损性能的一些尝试是通过在其基质中掺入如陶瓷中的第二相颗粒以产生Ti-6Al-4V的金属基质复合材料。该作品的目的是探讨氧化锆增强对火花血浆烧结Ti-6Al-4V复合材料(掺入Ti-6Al-4V基质中的氧化锆颗粒)的影响,Ti-6Al-4V的微动腐蚀性能。在用5和10重量%的ZrO 2上以烧结的Ti-6a1-4V和Ti-6Al-4V进行微量腐蚀试验。使用圆柱形接触配置,在施加85和115n的胎儿牛血清中进行测试。在整个测试中记录了OCP,耗散能量和摩擦系数的演变。在腐蚀试验之前对样品的微观结构分析显示出由于氧化锆添加而在整个Ti-6a1-4V基质中存在球状凝聚物;在具有10重量%的复合材料中,聚集体的体积较高。%ZrO2。与纯Ti-6Al-4V相比,Ti-6Al-4V复合材料在胎儿牛血清中的微粒期间产生了封闭剂OCP。此外,微动腐蚀结果表明Ti-6Al-4V的Ti-6Al-4V的Tribocirosith抗性显着改善,其中10重量%ZrO2。该组合物也产生了最少的降解。和金属离子释放。机械数据显示,增加所施加的正常负荷促进从总体滑移到所有组合物的部分滑动条件的过渡。发现部分滑动在较高的正常负荷下普遍存在(耗散能量的大幅度降低,因此摩擦系数)。这种机械状况可防止大量的降解。

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