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Deformation Analysis in Biomaterials using Digital Speckle Interferometry

机译:使用数字散斑干涉法分析生物材料中的变形

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摘要

One of the most interesting points when evaluating the response of an implanted prosthesis is the knowledge of how biomaterials behave under a certain deforming stress. Obviously, the greater the stress on a particular moment, the higher possibility of the failure implant. But in many cases, the most important fact regarding the implant failure is due to a lesser stress that is continuously applied. Therefore it is helpful to know how biomaterials respond to this lesser stress. Digital speckle interferometry (DSPI) is suitable for this type of determination because of it is a highly sensitive and non-invasive optical technique. The aim of the presented work is determining the elasticity of biomaterials such as osseous structures and implants used to replace bones and to fix fractures between them. In particular, preliminary results were obtained applied to macerated human radius and a titanium screw used to treat the fractures of this bone. The analysis shows high correlation ratios in determining Young's modulus via DSPI technique in comparison with than that obtained by creation of the bone computer aided design (CAD) model using finite element method (FEM) in ANSYS software. The high degree of concordance between the results of both methods makes it possible to continue studying osseous samples with a fixed implant, and also other implants made of different alloys.
机译:在评估植入假体的响应时,最有趣的观点之一是有关生物材料在一定变形应力下的行为的知识。显然,特定时刻的应力越大,植入故障的可能性就越高。但是在许多情况下,有关植入失败的最重要事实是由于持续施加的应力较小。因此,了解生物材料如何应对这种较小的压力很有帮助。数字散斑干涉测量法(DSPI)由于它是一种高度灵敏且无创的光学技术,因此适用于这种类型的确定。提出的工作的目的是确定生物材料的弹性,例如骨结构和用于替代骨骼并固定其间骨折的植入物。尤其是,获得的初步结果适用于浸软的人radius骨和用于治疗该骨骨折的钛螺钉。与在ANSYS软件中使用有限元方法(FEM)创建骨骼计算机辅助设计(CAD)模型所获得的相关度相比,该分析表明,通过DSPI技术确定杨氏模量的相关度较高。两种方法的结果之间高度一致,使得有可能继续研究具有固定植入物的骨样品,以及由不同合金制成的其他植入物。

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