Friction and Wear Characteristics of Micro-Arc Oxidation Coating on Ti6Al4V Alloy—A Review

IF 1.6 Q4 ENGINEERING, BIOMEDICAL
Zhangyue Qin, Xiaogang Zhang, Yali Zhang, Yong Luo, Zhongmin Jin
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Abstract

Ti6Al4V alloy is widely used in artificial joints, artificial bones, and dental implants due to its elastic modulus similar to that of bone, good biocompatibility and non-cytotoxicity, low density, and excellent fatigue resistance. However, its utility is constrained by the low surface hardness and inadequate wear resistance. Micro-arc oxidation (MAO) technology emerges as a surface modification method characterised by a straightforward process and superior processing efficacy, making it particularly favoured in enhancing the wear resistance of Ti6Al4V. This paper commenced by elucidating the fundamental principles of micro-arc oxidation. Subsequently, it examined the impacts of crucial parameters such as electrolyte type, concentration, processing voltage, current, time, and electrolyte additives on the friction and wear properties of Ti6Al4V alloy MAO coatings, proposing three mechanisms for optimising wear resistance. The primary strategies for augmenting the microhardness and wear resistance of Ti6Al4V alloy MAO coatings involved pore reduction even sealing, lubrication enhancement, and hard compound generation. Following this, the article synthesised the friction and wear attributes of MAO coatings in conjunction with diverse modification techniques, alongside a review of fretting wear characteristics of Ti6Al4V alloy MAO coatings. Lastly, conclusions and prospects were presented to furnish a foundation for future exploration into the wear resistance of Ti6Al4V alloy MAO coatings in scholarly endeavours.

Abstract Image

Ti6Al4V 合金具有与骨骼相似的弹性模量、良好的生物相容性和无毒性、低密度和出色的抗疲劳性,因此被广泛用于人工关节、人工骨骼和牙科植入物。然而,由于其表面硬度低、耐磨性不足,其用途受到限制。微弧氧化(MAO)技术是一种表面改性方法,具有工艺简单、加工效率高的特点,因此在提高 Ti6Al4V 的耐磨性方面尤其受到青睐。本文首先阐明了微弧氧化的基本原理。随后,研究了电解液类型、浓度、加工电压、电流、时间和电解液添加剂等关键参数对 Ti6Al4V 合金 MAO 涂层摩擦和磨损性能的影响,提出了优化耐磨性的三种机制。增强 Ti6Al4V 合金 MAO 涂层微硬度和耐磨性的主要策略包括减少孔隙甚至密封、增强润滑和生成硬化合物。随后,文章结合各种改性技术综合分析了 MAO 涂层的摩擦和磨损特性,并对 Ti6Al4V 合金 MAO 涂层的摩擦磨损特性进行了综述。最后,文章提出了结论和展望,为未来学术界探索 Ti6Al4V 合金 MAO 涂层的耐磨性奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biosurface and Biotribology
Biosurface and Biotribology Engineering-Mechanical Engineering
CiteScore
1.70
自引率
0.00%
发文量
27
审稿时长
11 weeks
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