首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructural evolution and mechanical properties of bulk and porous low-cost Ti-Mo-Fe alloys produced by powder metallurgy
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Microstructural evolution and mechanical properties of bulk and porous low-cost Ti-Mo-Fe alloys produced by powder metallurgy

机译:粉末冶金生产的散装和多孔低成本Ti-Mo-Fe合金的微观结构演化与机械性能

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A series of low-cost Ti-10Mo-xFe (x = 1, 5, 9 wt%) alloys were fabricated using conventional press and sinter powder metallurgy to investigate the effect of Fe content on their phase stability, sintering response, microstructure and mechanical properties. Phase analyses indicated that all alloys were composed of alpha, beta and intermetallic phases. However, Fe additions increased the proportion of beta and intermetallic phases and reduced the propensity of the alloy system to form alpha phase during slow furnace cooling. Densification of the Ti-10Mo-xFe alloys was subjected to two contradicting effects; a strong sintering response caused by the fast diffusion rate of Fe atoms which promotes densification and formation of Kirkendall pores related to the fast diffusion rate of Fe atoms in conjunction with comparatively slower diffusion of Ti and Mo. Nonetheless, the porosity level of the alloys was less than that of the sintered CP-Ti. Depending on the content of alpha, beta and intermetallic phases, the alloys exhibited varied mechanical properties. It was found that Ti-10Mo-5Fe presented the best combination of mechanical properties including the highest compressive strength (2392 MPa) and strain (43%) and low elastic modulus (91 GPa) superior to the corresponding ones for the commonly used CP-Ti and some other Ti-based alloys. Porous Ti-10Mo-5Fe alloy was also fabricated by addition of 30 and 60 vol% ammonium hydrogen carbonate (NH4HCO3) space holder which generated sintered scaffolds with 25% and 52% porosity, respectively, with an increased effective pore size at higher porosity. This reduced the compressive strengths to 649 MPa and 168 MPa and the elastic moduli to 34 GPa and 16 GPa, respectively. This study demonstrates that Ti-Mo-Fe alloys offer significant savings on raw materials compared to current commercial and many recently developed biomedical Ti alloys. It also shows that porous Ti-10Mo-5Fe scaffolds are promising for hard tissue engineering applications offering mechanical properties which closely match with the human bone and optimal pore sizes essential for bone ingrowth. (C) 2020 Elsevier B.V. All rights reserved.
机译:采用常规压力机和烧结粉末冶金技术制备了一系列低成本的Ti-10Mo-xFe(x=1,5,9 wt%)合金,研究了Fe含量对其相稳定性、烧结响应、显微组织和力学性能的影响。相分析表明,所有合金均由α、β和金属间相组成。然而,铁的加入增加了β相和金属间相的比例,并降低了合金系统在缓慢炉冷却期间形成α相的倾向。Ti-10Mo-xFe合金的致密化受到两种相互矛盾的影响;由于Fe原子的快速扩散速度导致了强烈的烧结反应,从而促进了Kirkendall孔隙的致密化和形成,这与Fe原子的快速扩散速度以及Ti和Mo的相对较慢的扩散有关。尽管如此,合金的孔隙率水平低于烧结的CP-Ti。根据α、β和金属间相的含量,合金表现出不同的机械性能。结果发现,Ti-10Mo-5Fe呈现出最佳的机械性能组合,包括最高的抗压强度(2392MPa)、应变(43%)和低弹性模量(91GPa),优于常用的CP-Ti和其他一些钛基合金的相应性能。通过添加体积分数分别为30%和60%的碳酸氢铵(NH4HCO3)空间支架,制备了多孔Ti-10Mo-5Fe合金,其烧结支架的孔隙率分别为25%和52%,在较高孔隙率下有效孔径增大。这将抗压强度分别降低至649 MPa和168 MPa,弹性模量分别降低至34 GPa和16 GPa。这项研究表明,与目前的商业和许多最近开发的生物医用钛合金相比,钛-钼-铁合金在原材料方面节省了大量成本。研究还表明,多孔Ti-10Mo-5Fe支架有望用于硬组织工程应用,提供与人体骨骼紧密匹配的力学性能和骨生长所需的最佳孔径。(C) 2020爱思唯尔B.V.版权所有。

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