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新型 Ti30Ta20Nb 生物医学合金的结构与力学性能。

Structure and Mechanical Properties of the New Ti30Ta20Nb Biomedical Alloy.

机构信息

Institute of Materials Science, University of Silesia in Katowice, 41-500 Chorzów, Poland.

出版信息

J Nanosci Nanotechnol. 2019 May 1;19(5):2556-2566. doi: 10.1166/jnn.2019.15847.

DOI:10.1166/jnn.2019.15847
PMID:30501752
Abstract

In order to better understand the relationship between parameters of a mechanical alloying process and microstructure, especially the structure of porosity, some research and studies were carried out. The current study investigates the possibility to prepare the porous materials by mechanical alloying and annealing. A high-energy ball-milling process in the planetary ball mill Fritch PULVERISETTE 7 premium line was used for the solid-state synthesis of the single phase powders for titanium based biomedical alloy. The influence of the high-energy ball-milling time on the structure and morphology of the synthesized precursors after annealing was investigated. Additionally, the effect of the variable time of the ball-milling on the structural characteristics, pore morphology and mechanical properties of a biomedical Ti30Ta20Nb (wt.%) was investigated as well. This study confirms the predominance of the titanium phase and also the presence of the titanium phase. The analysis of the diffraction patters obtained using the Rietveld method showed that when the milling time increases, the lattice parameters for the tested samples become reduced. Summing up, it should be pointed out that the areas of pure unreacted titanium still exist in the material. These areas were correlated to the results of an X-ray diffraction analysis. This research starts the process of converting mechanical alloying into a production method which could become an alternative to the space holder technique for the new titanium alloys used for medical applications.

摘要

为了更好地理解机械合金化工艺参数与微观结构之间的关系,特别是孔隙结构,我们进行了一些研究。本研究探讨了通过机械合金化和退火制备多孔材料的可能性。使用行星球磨机 Fritch PULVERISETTE 7 premium line 中的高能球磨工艺,对用于生物医学钛合金的单相粉末进行固态合成。研究了高能球磨时间对退火后合成前体的结构和形态的影响。此外,还研究了球磨时间变化对生物医用 Ti30Ta20Nb(wt.%)的结构特性、孔隙形态和力学性能的影响。本研究证实了钛相的优势,也证实了钛相的存在。使用 Rietveld 方法对衍射图谱的分析表明,随着研磨时间的增加,测试样品的晶格参数减小。总之,应该指出的是,在材料中仍然存在纯未反应的钛的区域。这些区域与 X 射线衍射分析的结果相关。本研究开始将机械合金化转化为一种生产方法,这种方法可能成为用于医疗应用的新型钛合金的空间占位剂技术的替代方法。

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