Ti-38Zr-11Nb合金组织与力学性能研究。

IF 5 3区 医学 Q1 ENGINEERING, BIOMEDICAL
Konstantin V Sergienko, Sergei V Konushkin, Yaroslava A Morozova, Mikhail A Kaplan, Artem D Gorbenko, Boris A Rumyantsev, Mikhail E Prutskov, Evgeny E Baranov, Elena O Nasakina, Tatiana M Sevostyanova, Sofia A Mikhlik, Andrey P Chizhikov, Lyudmila A Shatova, Aleksandr V Simakin, Ilya V Baimler, Maria A Sudarchikova, Mikhail L Kheifetz, Alexey G Kolmakov, Mikhail A Sevostyanov
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引用次数: 0

摘要

髋关节植入物是用于替换受损关节的最普遍的医疗植入物类型之一。现代种植体材料的使用,如钴铬合金、不锈钢、钛和其他钛合金,伴随着挑战,包括某些元素(如铝、钒、镍)的毒性和过高的杨氏模量,这对生物力学相容性产生不利影响。种植体材料和骨组织的刚度不匹配,称为应力屏蔽,可导致不良后果,如骨吸收和种植体松动。由于β-钛合金具有优异的生物相容性、耐腐蚀性和低杨氏模量(接近骨组织的杨氏模量(10-30 GPa)),最近的研究将重点转移到β-钛合金上。研究了Ti-38Zr-11Nb合金的显微组织、力学性能和相稳定性。利用能量色散光谱法确定了Ti、Zr和Nb在合金中的均匀分布。随后的显微组织分析显示,在轧制和淬火后,存在伸长的β-晶粒。此外,磨削还促进了再结晶过程和亚晶的形成。x射线衍射分析证实,在任何热处理条件下都存在稳定的β相,这可以解释为使用Nb作为β稳定剂,Zr作为中性元素,在其他β稳定剂存在下具有弱的β稳定作用。此外,拉伸测试表明,退火后的弹性模量从85 GPa下降到81 GPa。力学测试表明,抗拉强度大幅提高(从529 MPa到628 MPa),同时试样的断裂伸长率降低32%。这些变化归因于微观结构的转变,包括亚晶的形成和位错的重排。该研究结果表明,与传统材料相比,Ti-38Zr-11Nb合金具有较低的杨氏模量和稳定的β相,从而提高了植入物的耐用性,并降低了随着时间的推移形成脆性相的风险,因此具有作为首选材料的潜力。本研究表明,2级钛与Ti-38Zr-11Nb的耐蚀性相当。所讨论的材料在哺乳动物细胞中没有显示出细胞毒性活性的证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study of the Structure and Mechanical Properties of Ti-38Zr-11Nb Alloy.

Hip joint implants are among the most prevalent types of medical implants utilized for the replacement of damaged joints. The utilization of modern implant materials, such as cobalt-chromium alloys, stainless steel, titanium, and other titanium alloys, is accompanied by challenges, including the toxicity of certain elements (e.g., aluminum, vanadium, nickel) and excessive Young's modulus, which adversely impact biomechanical compatibility. A mismatch between the stiffness of the implant material and the bone tissue, known as stress shielding, can lead to adverse outcomes such as bone resorption and implant loosening. Recent studies have shifted the focus to β-titanium alloys due to their exceptional biocompatibility, corrosion resistance, and low Young's modulus, which is close to the Young's modulus of bone tissue (10-30 GPa). In this study, the microstructure, mechanical properties, and phase stability of the Ti-38Zr-11Nb alloy were investigated. Energy dispersion spectrometry was employed to confirm the homogeneous distribution of Ti, Zr, and Nb in the alloy. A subsequent microstructural analysis revealed the presence of elongated β-grains subsequent to rolling and quenching. Furthermore, grinding contributed to the process of recrystallization and the formation of subgrains. X-ray diffraction analysis confirmed the presence of a stable β-phase under any heat treatment conditions, which can be explained by the use of Nb as a β-stabilizer and Zr as a neutral element with a weak β-stabilizing effect in the presence of other β-stabilizers. Furthermore, the modulus of elasticity, as determined by tensile testing, exhibited a decline from 85 GPa to 81 GPa after annealing. Mechanical tests demonstrated a substantial enhancement in tensile strength (from 529 MPa to 628 MPa) concurrent with a 32% reduction in elongation to fracture of the samples. These alterations are attributed to microstructural transformations, including the formation of subgrains and the rearrangement of dislocations. This study's findings suggest that the Ti-38Zr-11Nb alloy has potential as a material of choice due to its lower Young's modulus compared to traditional materials and its stable β-phase, which enhances the implant's durability and reduces the risk of brittle phases forming over time. This study demonstrates that the corrosion resistance of titanium grade 2 and Ti-38Zr-11Nb is comparable. The material in question exhibited no evidence of cytotoxic activity in the context of mammalian cells.

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来源期刊
Journal of Functional Biomaterials
Journal of Functional Biomaterials Engineering-Biomedical Engineering
CiteScore
4.60
自引率
4.20%
发文量
226
审稿时长
11 weeks
期刊介绍: Journal of Functional Biomaterials (JFB, ISSN 2079-4983) is an international and interdisciplinary scientific journal that publishes regular research papers (articles), reviews and short communications about applications of materials for biomedical use. JFB covers subjects from chemistry, pharmacy, biology, physics over to engineering. The journal focuses on the preparation, performance and use of functional biomaterials in biomedical devices and their behaviour in physiological environments. Our aim is to encourage scientists to publish their results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Several topical special issues will be published. Scope: adhesion, adsorption, biocompatibility, biohybrid materials, bio-inert materials, biomaterials, biomedical devices, biomimetic materials, bone repair, cardiovascular devices, ceramics, composite materials, dental implants, dental materials, drug delivery systems, functional biopolymers, glasses, hyper branched polymers, molecularly imprinted polymers (MIPs), nanomedicine, nanoparticles, nanotechnology, natural materials, self-assembly smart materials, stimuli responsive materials, surface modification, tissue devices, tissue engineering, tissue-derived materials, urological devices.
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