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Conventional Powder Metallurgy Process and Characterization of Porous Titanium for Biomedical Applications

机译:生物医学应用的常规粉末冶金工艺和多孔钛的表征

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Commercially pure titanium (c.p. Ti) is one of the best metallic biomaterials for bone tissue replacement. However, one of its main drawbacks, which compromises the service reliability of the implants, is the stress-shielding phenomenon (Young’s modulus mismatch with respect to that one of the bone). Several previous works attempted to solve this problem. One alternative to solve that problem has been the development of biocomposites implants and, more recently, the fabrication of titanium porous implants. In this work, porous samples of c.p. Ti grade 4 were obtained using conventional powder metallurgy technique. The influence of the processing parameters (compacting pressure and sintering temperature) on the microstructure features (size, type, morphology, and percentage of porosity), as well as on the mechanical properties (compressive yield strength, and conventional and dynamic Young’s modulus) were investigated. The results indicated that there is an increment in density, roundness of pores, and mean free path between them as compacting pressure and/or sintering temperature is increased. The Young’s modulus (conventional and dynamic) and yield strength showed the same behavior. Better stiffness results, in the central part of cylindrical samples, were obtained for a uniaxial compression of 38.5 MPa using a sintering temperature of 1273 K and 1373 K (1000 °C and 1100 °C). An evaluation of porosity and Young’s modulus along a cylindrical sample divided in three parts showed that is possible to obtain a titanium sample with graded porosity that could be used to design implants. This approach opens a new alternative to solve the bone resorption problems associated with the stress-shielding phenomenon.
机译:商业纯钛(c.p. Ti)是用于骨组织替代的最佳金属生物材料之一。然而,其主要缺点之一是应力屏蔽现象(相对于其中一根骨头的杨氏模量不匹配),这损害了植入物的使用可靠性。先前的一些工作试图解决这个问题。解决该问题的一种替代方法是开发生物复合材料植入物,以及最近制造的钛多孔植入物。在这项工作中,c.p。的多孔样品。使用常规粉末冶金技术获得Ti 4级。加工参数(压缩压力和烧结温度)对微观结构特征(尺寸,类型,形态和孔隙率)以及机械性能(压缩屈服强度以及常规和动态杨氏模量)的影响是调查。结果表明,随着压实压力和/或烧结温度的增加,孔的密度,孔的圆度以及它们之间的平均自由程增加。杨氏模量(常规和动态)和屈服强度表现出相同的行为。使用1273 K和1373 K(1000°C和1100°C)的烧结温度,对于38.5 MPa的单轴压缩,在圆柱样品的中心部分获得了更好的刚度结果。沿分为三个部分的圆柱形样品进行的孔隙率和杨氏模量评估表明,可以得到具有渐变孔隙率的钛样品,该钛样品可用于设计植入物。这种方法为解决与应力屏蔽现象相关的骨骼吸收问题开辟了新的选择。

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