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On the Investigation of Surface Integrity of Ti6Al4V ELI Using Si-Mixed Electric Discharge Machining

机译:Si混合放电加工研究Ti6Al4V ELI的表面完整性

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摘要

Surface modification is given vital importance in the biomedical industry to cope with surface tissue growth problems. Conventionally, basic surface treatment methods are used which include physical and chemical deposition. The major drawbacks associated with these methods are excessive cost and poor adhesion of coating with implant material. To generate a bioactive surface on an implant, electric discharge machining (EDM) is a promising and emerging technology which simultaneously serves as machining and surface modification technique. Besides the surface topology, implant material plays a very important role in surgical applications. From various implant materials, titanium (Ti6Al4V ELI) alloy is the best choice for long-term hard body tissue replacement due to its superior engineering, excellent biocompatibility and antibacterial properties. In this research, EDM’s surface characteristics are explored using Si powder mixed in dielectric on Ti6Al4V ELI. The effect of powder concentration (5 g/L, 10 g/L and 20 g/L) along with pulse current and pulse on time is investigated on micro and nanoscale surface topography. Optimized process parameters having a 5 g/L powder concentration result in 2.76 μm surface roughness and 13.80 μm recast layer thickness. Furthermore, a nano-structured (50–200 nm) biocompatible surface is fabricated on the surface for better cell attachment and growth. A highly favourable carbon enriched surface is confirmed through EDS which increases adhesion and proliferation of human osteoblasts.
机译:在生物医学工业中,表面改性对于解决表面组织生长问题至关重要。通常,使用包括物理和化学沉积的基本表面处理方法。这些方法的主要缺点是成本过高和涂层与植入材料的粘合性差。为了在植入物上产生生物活性表面,放电加工(EDM)是一种有前途的新兴技术,同时可以用作加工和表面改性技术。除了表面拓扑外,植入材料在外科应用中也起着非常重要的作用。钛(Ti6Al4V ELI)合金具有出色的工程技术,出色的生物相容性和抗菌特性,是长期进行硬组织置换的最佳选择,它来自各种植入材料。在这项研究中,通过在Ti6Al4V ELI上的电介质中混合硅粉来探索EDM的表面特性。在微米和纳米级表面形貌上研究了粉末浓度(5 g / L,10 g / L和20 g / L)以及脉冲电流和脉冲对时间的影响。粉末浓度为5 g / L的优化工艺参数可产生2.76μm的表面粗糙度和13.80μm的重铸层厚度。此外,在表面上制造了纳米结构(50-200 nm)的生物相容性表面,以使细胞更好地附着和生长。通过EDS证实了高度有利的富碳表面,其增加了人类成骨细胞的粘附和增殖。

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