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首页> 外文期刊>Journal of Materials Science >Development of new titanium implants with longitudinal gradient porosity by space-holder technique
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Development of new titanium implants with longitudinal gradient porosity by space-holder technique

机译:利用空间保持器技术开发具有纵向梯度孔隙率的新型钛植入物

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Bone replacement with conventional biomaterials entails a biomechanical incompatibility with respect to highly specialized and anisotropic bone tissue; stiffness mismatch is the most important example of that event, and it is always present in the components of all prosthetic systems for dental and joint replacements. In the case of titanium implants used for those biomedical applications, the main consequence of that mismatch is the bone resorption around the implants due to stress shielding with respect to bone. Bio-inspired design frameworks have opened a broad field of possibilities for new approaches to the stress-shielding phenomenon in bone replacements systems. To that end, conventional and non-conventional powder metallurgy have emerged as the feasible processing techniques for producing porous samples, which can match both complexity and anisotropy of bone tissue. Complete dental restoration is a good example of biomechanical systems with an important change of longitudinal stiffness once the components are implanted; therefore, development of new prosthetics systems with graded porosity for continuous Young's modulus change is required. Samples with longitudinal graded porosity (symmetric and non-symmetric) by space-holder technique were developed, fabricated, and characterized in this work. Main findings indicated that the experimental procedure for space-holder elimination was effective, feasible, and reproducible, with better results for a compaction pressure of 800 MPa with low global NaCl content. Three-layer design (30/40/50) allowed stress shielding to be reduced without any important effect on mechanical strength with respect to the cortical bone.
机译:用传统的生物材料替代骨骼会导致高度专业化和各向异性的骨组织的生物力学不相容。刚度不匹配是该事件的最重要例子,并且它始终存在于所有义齿系统的牙科和关节置换中。在用于那些生物医学应用的钛植入物的情况下,这种失配的主要后果是由于相对于骨骼的应力屏蔽,植入物周围的骨骼吸收。以生物为灵感的设计框架为骨骼替代系统中应力屏蔽现象的新方法开辟了广阔的可能性。为此,常规和非常规粉末冶金已经成为生产多孔样品的可行加工技术,可以同时满足骨组织的复杂性和各向异性。完全的牙齿修复是生物力学系统的一个很好的例子,一旦植入部件,其纵向刚度就会发生重要变化。因此,需要开发具有分级孔隙率的连续不断的杨氏模量变化的新修复系统。在这项工作中,通过空间保持器技术开发了具有纵向梯度孔隙度(对称和非对称)的样品。主要发现表明,消除空位的实验程序是有效,可行和可重复的,对于压实压力为800 MPa且总NaCl含量较低的压实效果更好。三层设计(30/40/50)可以减少应力屏蔽,而对皮质骨的机械强度没有任何重要影响。

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