Santos Vincent, Uddin Mohammad, Hall Colin
UniSA STEM, University of South Australia, Mawson Lakes, SA 5095, Australia.
Future Industries Institute, University of South Australia, Mawson Lakes, SA 5095, Australia.
J Funct Biomater. 2023 Apr 24;14(5):242. doi: 10.3390/jfb14050242.
The present paper aims to provide an overview of the current state-of-the-art mechanical surface modification technologies and their response in terms of surface roughness, surface texture, and microstructural change due to cold work-hardening, affecting the surface integrity and corrosion resistance of different Mg alloys. The process mechanics of five main treatment strategies, namely, shot peening, surface mechanical attrition treatment, laser shock peening, ball burnishing, and ultrasonic nanocrystal surface modification, were discussed. The influence of the process parameters on plastic deformation and degradation characteristics was thoroughly reviewed and compared from the perspectives of surface roughness, grain modification, hardness, residual stress, and corrosion resistance over short- and long-term periods. Potential and advances in new and emerging hybrid and in-situ surface treatment strategies were comprehensively eluded and summarised. This review takes a holistic approach to identifying the fundamentals, pros, and cons of each process, thereby contributing to bridging the current gap and challenge in surface modification technology for Mg alloys. To conclude, a brief summary and future outlook resulting from the discussion were presented. The findings would offer a useful insight and guide for researchers to focus on developing new surface treatment routes to resolve surface integrity and early degradation problems for successful application of biodegradable Mg alloy implants.
本文旨在概述当前最先进的机械表面改性技术,以及这些技术在表面粗糙度、表面纹理和因冷加工硬化导致的微观结构变化方面的响应,这些变化会影响不同镁合金的表面完整性和耐腐蚀性。讨论了喷丸、表面机械研磨处理、激光冲击喷丸、滚珠光整和超声纳米晶表面改性这五种主要处理策略的工艺机理。从短期和长期的表面粗糙度、晶粒改性、硬度、残余应力和耐腐蚀性等角度,全面回顾并比较了工艺参数对塑性变形和降解特性的影响。全面阐述并总结了新型和新兴的混合及原位表面处理策略的潜力和进展。本综述采用整体方法来确定每个工艺的基本原理、优点和缺点,从而有助于弥合当前镁合金表面改性技术的差距和挑战。最后,给出了讨论得出的简要总结和未来展望。这些研究结果将为研究人员提供有用的见解和指导,以便他们专注于开发新的表面处理途径,以解决表面完整性和早期降解问题,从而成功应用可生物降解镁合金植入物。