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添加硅对用于骨科植入物的Ti-35Nb合金微观结构和力学性能的影响。

Influence of Si addition on the microstructure and mechanical properties of Ti-35Nb alloy for applications in orthopedic implants.

作者信息

Tavares A M G, Ramos W S, de Blas J C G, Lopes E S N, Caram R, Batista W W, Souza S A

机构信息

Department of Materials Science and Engineering, Federal University of Sergipe, 49100-000 São Cristóvão, SE, Brazil.

Metallurgical Engineering Program-PEMM/COPPE, Federal University of Rio de Janeiro, C.P.68505, 21945970 Rio de Janeiro, RJ, Brazil.

出版信息

J Mech Behav Biomed Mater. 2015 Nov;51:74-87. doi: 10.1016/j.jmbbm.2015.06.035. Epub 2015 Jul 16.

Abstract

In the development of new materials for orthopedic implants, special attention has been given to Ti alloys that show biocompatible alloy elements and that are capable of reducing the elastic modulus. Accordingly, Ti-Nb-Si alloys show great potential for application. Thus, this is a study on the microstructures and properties of Ti-35Nb-xSi alloys (x=0, 0.15, 0.35 and 0.55) (wt%) which were thermally treated and cooled under the following conditions: furnace cooling (FC), air cooling (AC), and water quenching (WQ). The results showed that Si addition is effective to reduce the density of omega precipitates making beta more stable, and to produce grain refinement. Silicides, referred as (Ti,Nb)3Si, were formed for alloys containing 0.55% Si, and its formation presumably occurred during the heating at 1000°C. In all cooling conditions, the hardness values increased with the increasing of Si content, as a result from the strong Si solid solution strengthening effect, while the elastic modulus underwent a continuous reduction due to the reduction of omega precipitates in beta matrix. Lower elastic moduli were observed in water-quenched alloys, which concentration of 0.15% Si was more effective in their reduction, with value around 65 GPa. Regarding Ti-35Nb-xSi alloys (x=0, 0.15 and 0.35), the "double yield point" phenomenon, which is typical of alloys with shape memory effect, was observed. The increase in Si concentration also produced an increase from 382 MPa to 540 MPa in the alloys' mechanical strength. Ti-35Nb-0.55Si alloy, however, showed brittle mechanical behavior which was related to the presence of silicides at the grain boundary.

摘要

在骨科植入物新材料的研发中,人们特别关注那些含有生物相容性合金元素且能降低弹性模量的钛合金。因此,Ti-Nb-Si合金具有巨大的应用潜力。于是,本研究针对Ti-35Nb-xSi合金(x = 0、0.15、0.35和0.55)(重量百分比)在以下条件下进行热处理和冷却后的微观结构与性能展开:炉冷(FC)、空冷(AC)和水淬(WQ)。结果表明,添加硅可有效降低ω相析出物的密度,使β相更稳定,并细化晶粒。对于含0.55%硅的合金,形成了硅化物,即(Ti,Nb)3Si,其形成可能发生在1000°C加热过程中。在所有冷却条件下,由于硅的强烈固溶强化作用,硬度值随硅含量的增加而升高,而弹性模量因β基体中ω相析出物的减少而持续降低。水淬合金的弹性模量较低,其中0.15%硅的浓度对降低弹性模量更为有效,其值约为65 GPa。对于Ti-35Nb-xSi合金(x = 0、0.15和0.35),观察到了具有形状记忆效应的合金典型的“双屈服点”现象。硅浓度的增加还使合金的机械强度从382 MPa提高到540 MPa。然而,Ti-35Nb-0.55Si合金表现出脆性机械行为,这与晶界处存在硅化物有关。

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