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Influence of Electro Discharge Machining of Biodegradable Magnesium on the Biocompatibility

机译:可降解镁的电火花加工对生物相容性的影响

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摘要

Biodegradable implants are in the focus of recent research approaches in the medical engineering sector for the treatment of many different defects. In comparison to permanent implants the risk of inflammatory reactions is significantly reduced and no foreign material is left in the body using degradable materials. Due to the extraordinary biocompatibility and initial structural stability, similar to the human bone, magnesium alloys are best suited for degradable orthopedic implants. But up until now the degradation of magnesium inside the human body is too fast and therefore the structural stability is lost too early. Newest research suggests that the degradation kinematic as well as the cell response of the implant can be improved by adjusting certain surface properties, e.g. complex micro- and macrostructures. Since these structures are very difficult to be machined with conventional processes, especially for complex and filigree 3D-structures, alternative manufacturing processes need to be developed. Electro Discharge Machining in combination with a Plasma Electrolytic Conversion of the surface is very well suited for the creation of geometries with high aspect ratios and microstructures. The focus of this paper lies on the investigation of the influence of the production processes on the biocompatibility of the machined part. The process chain for such implants will therefore be analyzed in regard to macro and micro surface properties using SEM and EDX-analysis. These results are then compared to biocompatibility testing concerning cell viability and toxicity.
机译:可生物降解的植入物是医学工程领域中用于治疗许多不同缺陷的最新研究方法的重点。与永久性植入物相比,使用可降解材料可显着降低炎症反应的风险,并且不会在体内残留异物。由于与人类骨骼类似的非凡生物相容性和初始结构稳定性,镁合金最适合可降解的骨科植入物。但是直到现在,人体内镁的降解还太快,因此失去结构稳定性还为时过早。最新研究表明,可以通过调整某些表面特性(例如表面粗糙度)来改善植入物的降解动力学以及细胞反应。复杂的微观和宏观结构。由于这些结构很难用常规方法进行机加工,尤其是对于复杂的金银丝3D结构,因此需要开发替代的制造方法。结合表面的等离子电解转换的放电加工非常适合于创建具有高深宽比和微结构的几何形状。本文的重点在于研究生产过程对加工零件的生物相容性的影响。因此,将使用SEM和EDX分析对此类植入物的工艺链进行宏观和微观表面性能分析。然后将这些结果与有关细胞活力和毒性的生物相容性测试进行比较。

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