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Structural, tribological and antibacterial properties of (α + β) based ti-alloys for biomedical applications

机译:(α+β)基于生物医学应用的结构,摩擦学和抗菌性能

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Implant-related follow up complications resulting from poor implant integration, delamination, chipping, mechanical instability, inflammation or graft-vs-host reaction may lead to low patient tolerance, prolonged care and sometimes leading to a second surgery. Hence, there is an urgent need for developing biomaterials which will help to overcome the above compatibility problems. Ti based alloys have been widely used for biomedical applications, due to their excellent properties, such as low modulus, high biocompatibility and high corrosion resistance. In order to further improve the physical, mechanical and tribological properties of these alloys, microstructural modification is often required. Hence, this study aims to develop and evaluate the structural and tribological behavior of Hot Isostatic Pressed (HIPed) and sintered Ti-6Al-7Nb samples containing niobium, which is less toxic and less expensive as compared to the usual alloying element, vanadium (Ti-6Al-4 V). The Ti-6Al-7Nb alloys were fabricated by using nanoparticle powders milled for different durations (2, 6, 12 and 18 h) to evaluate the effect of milling time on the morphological and structural properties. Friction and wear tests were carried out on the (HIPed) and finally sintered Ti-6Al-7Nb alloy samples, to evaluate their tribological properties under different applied loads (2, 8 and 16 N), with an alumina α-Al2O3ball as a counter face using an oscillating tribometer. The physical characterization of the nanopowders formed using different milling times indicated that the particle and crystallite size continually decreased with increasing milling time, while the microstrain increased. It is observed that the friction coefficient and wear rate for the samples prepared by powders milled for 18 h and tested under 2 N were lowest with values of 0.25 and 1.51 × 10?2μm3?N-1μm-1, respectively compared to other milled samples. This improvement in tribological properties is attributed to the grain refinement at high milling times. The antibacterial evaluation of the fabricated alloys showed an improvement in antibacterial performance of the samples milled at 18 h compared to the other milling times.
机译:与植入物整合,分层,碎裂,机械不稳定,炎症或移植物 - 与宿主反应造成的植入物相关的后续并发症可能导致低患者耐受性,延长护理,有时导致第二次手术。因此,迫切需要开发生物材料,这将有助于克服上述相容性问题。由于其优异的性能,如低模量,高生物相容性和高耐腐蚀性,Ti基合金已广泛用于生物医学应用。为了进一步改善这些合金的物理,机械和摩擦学性质,通常需要微观结构改性。因此,本研究旨在开发和评估含有铌的热等静压(臀部)和烧结的Ti-6AL-7NB样品的结构和摩擦学行为,与通常的合金元素钒(TI -6Al-4 V)。通过使用针对不同持续时间(2,6,12和18h)的纳米颗粒粉末制造Ti-6AL-7NB合金,以评估研磨时间对形态学和结构性能的影响。在(uped)和最后烧结的Ti-6Al-7nb合金样品上进行摩擦和磨损试验,以评估它们在不同施加的载荷(2,8和16n)下的摩擦学特性,用氧化铝α-Al2O3球作为计数器面部使用振荡摩擦计。使用不同研磨时间形成的纳米粉末的物理表征表明颗粒和微晶尺寸随着铣削时间的增加而连续降低,而微粒吹进者增加。观察到通过研磨18小时的粉末制备的样品的摩擦系数和磨损率并在2n下测试,与其他研磨样品相比,0.25和1.51×10?2μm3?n-1μm-1的值最低。这种摩擦学性质的这种改善归因于高铣削时间的晶粒细化。与其他研磨时间相比,制造合金对制造合金的抗菌评估显示出在18小时的样品的抗菌性能的提高。

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