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用于全髋关节置换术的新型表面硬化、低模量、耐腐蚀Ti-13Nb-13Zr合金。

New surface-hardened, low-modulus, corrosion-resistant Ti-13Nb-13Zr alloy for total hip arthroplasty.

作者信息

Davidson J A, Mishra A K, Kovacs P, Poggie R A

机构信息

Orthopaedic Research Department, Smith & Nephew Richards Inc., Memphis, TN 38116.

出版信息

Biomed Mater Eng. 1994;4(3):231-43.

PMID:7950871
Abstract

To optimize the performance of total hip replacement, scientists and clinicians are seeking new materials and noncemented, press-fit designs that can improve load transfer to the bone and reduce the incidence of loosening and thigh pain. Currently used Co-Cr-Mo alloy has a relatively high elastic modulus (E = 227 GPa), which limits its ability to transfer load to the surrounding bone in the proximal calcar region. Thus to improve load transfer, designs are considered with less cross-sectional area to increase flexibility, but at the expense of fit and fill, and thus stability of the implant within the bone. Should stem loosening occur, the stem stresses may exceed the relatively low fatigue strength of the Co-Cr-Mo alloy and lead to stem breakage. To improve these conditions, lower modulus Ti-6Al-4V alloy (E = 115 GPa) is being used. More recently, a new lower-modulus (E = 79 GPa) Ti-13Nb-13Zr alloy has been developed which does not contain any elemental constituents associated with adverse cell response (i.e., Co, Cr, Mo, Ni, Fe, Al, V), and which possesses comparable or superior strength and toughness to existing Ti-6Al-4V alloy. The carefully selected Nb and Zr constituents improve bone biocompatibility and corrosion resistance compared to that of currently used implant metals. Additionally, a unique diffusion hardening (DH) treatment can be conducted during the age-hardening process of this near-beta alloy to produce a hardened surface with abrasion resistance superior to that of Co-Cr-Mo alloy. This also provides an improvement in the micro-fretting tendencies that may occur within femoral head-neck taper regions and modular interfaces of other implant designs. The present study describes the metallurgy and mechanical properties of this unique low modulus Ti-13Nb-13Zr alloy, and the heat treatments used to obtain the high strength, corrosion resistance, and surface hardening that renders this biocompatible alloy well-suited for press fit hip replacement applications. Because of the relatively lower beta transus (735 degrees C), this alloy is also much easier to net shape forge into more complex stem designs.

摘要

为了优化全髋关节置换的性能,科学家和临床医生正在寻找新型材料以及非骨水泥压配式设计,以改善向骨骼的载荷传递,降低松动和大腿疼痛的发生率。目前使用的钴铬钼合金具有相对较高的弹性模量(E = 227 GPa),这限制了其在近端距骨区域向周围骨骼传递载荷的能力。因此,为了改善载荷传递,人们考虑采用横截面积更小的设计以增加柔韧性,但这是以牺牲贴合度和填充效果,进而牺牲植入物在骨内的稳定性为代价的。如果发生柄部松动,柄部应力可能会超过钴铬钼合金相对较低的疲劳强度,导致柄部断裂。为了改善这些状况,正在使用较低模量的钛-6铝-4钒合金(E = 115 GPa)。最近,一种新型的更低模量(E = 79 GPa)的钛-13铌-13锆合金已被开发出来,该合金不包含任何与不良细胞反应相关的元素成分(即钴、铬、钼、镍、铁、铝、钒),并且其强度和韧性与现有的钛-6铝-4钒合金相当或更优。与目前使用的植入金属相比,精心挑选的铌和锆成分改善了骨生物相容性和耐腐蚀性。此外,在这种近β合金的时效硬化过程中可以进行独特的扩散硬化(DH)处理,以产生具有优于钴铬钼合金耐磨性的硬化表面。这也改善了可能在股骨头-颈锥度区域和其他植入物设计的模块化界面处出现的微动倾向。本研究描述了这种独特的低模量钛-13铌-13锆合金的冶金学和力学性能,以及用于获得高强度、耐腐蚀性和表面硬化的热处理方法,这些特性使这种生物相容性合金非常适合压配式髋关节置换应用。由于β转变温度相对较低(735℃),这种合金也更容易进行净形锻造,制成更复杂的柄部设计。

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