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Fabrication of Biodegradable Mg Alloy Bone Scaffold Through Electrical Discharge μ-Drilling Route

机译:通过电放电μ钻井生产可生物降解的Mg合金骨支架的制备

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Magnesium alloys based materials are gaining popularity for bone tissue engineering as they are biocompatible, bioresorbable and shows high osteoblast activities in biological environment. In present work, perforated structures are produced using electrical discharge drilling (EDD), with an attempt to fabricate Mg alloy based biodegradable scaffold for bone tissue engineering. Using appropriate EDD parameters and tubular electrode of diameter 300 μm, micro holes of diameter 408 μm are produced in ZM21 alloy and two different types of perforated structures are obtained with porosity of 22% and 34%. These two perforated structures are compared with solid sample in terms of apatite formation, weight gain and loss of load bearing capacity after immersion in simulated body fluid (SBF) media. After 21 days of immersion test in SBF media, apatite formation in perforated structure with interconnected holes (porosity 34%) is highest, resulting into highest weight gain of 6.23%, for this sample, whereas, solid sample shows negligible weight gain of 0.58%. The loss in mechanical load bearing capacity is found lowest at 5.58% in scaffold having interconnected holes (with porosity 34%). Thus, interconnected perforated Mg alloy structures having well defined micro pores and pore density can be designed and fabricated for biodegradable scaffold application.
机译:基于镁合金的材料是对骨组织工程的普及,因为它们是生物相容性,生物可吸收的,并且在生物环境中显示出高骨质细胞活性。在目前的工作中,采用电放电钻孔(EDD)生产穿孔结构,试图制造基于Mg合金的可生物降解支架用于骨组织工程。使用适当的EDD参数和直径300μm的管状电极,直径408μm的微孔在ZM21合金中产生,并且通过孔隙率获得两种不同类型的穿孔结构,为22%和34%。将这两个穿孔结构与磷灰石形成,浸泡在模拟体液(SBF)介质中浸泡后的负载承载力损失的比较。在SBF介质中浸渍试验21天后,具有互连孔的穿孔结构(孔隙率34%)的磷灰石形成最高,导致该样品的最高重量增益为6.23%,而固体样品显示出可忽略的重量增益0.58% 。机械承载能力的损失在具有互连孔的支架中最低为5.58%(具有孔隙率为34%)。因此,可以设计和制造具有明确定义的微孔和孔密度的互连的穿孔Mg合金结构,用于可生物降解的支架应用。

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