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用于增材制造Ti-6Al-4V零件表面功能化的两步激光后处理

Two-Step Laser Post-Processing for the Surface Functionalization of Additively Manufactured Ti-6Al-4V Parts.

作者信息

Solheid Juliana S, Wunsch Torsten, Trouillet Vanessa, Weigel Simone, Scharnweber Tim, Seifert Hans Jürgen, Pfleging Wilhelm

机构信息

Institute for Applied Materials-Applied Materials Physics, Karlsruhe Institute of Technology, 76021 Karlsruhe, Germany.

Institute for Micro Process Engineering, Karlsruhe Institute of Technology, 76021 Karlsruhe, Germany.

出版信息

Materials (Basel). 2020 Oct 30;13(21):4872. doi: 10.3390/ma13214872.

Abstract

Laser powder bed fusion (LPBF) is one of the additive manufacturing methods used to build metallic parts. To achieve the design requirements, the LPBF process chain can become long and complex. This work aimed to use different laser techniques as alternatives to traditional post-processes, in order to add value and new perspectives on applications, while also simplifying the process chain. Laser polishing (LP) with a continuous wave laser was used for improving the surface quality of the parts, and an ultrashort pulse laser was applied to functionalize it. Each technique, individually and combined, was performed following distinct stages of the process chain. In addition to removing asperities, the samples after LP had contact angles within the hydrophilic range. In contrast, all functionalized surfaces presented hydrophobicity. Oxides were predominant on these samples, while prior to the second laser processing step, the presence of TiN and TiC was also observed. The cell growth viability study indicated that any post-process applied did not negatively affect the biocompatibility of the parts. The presented approach was considered a suitable post-process option for achieving different functionalities in localized areas of the parts, for replacing certain steps of the process chain, or a combination of both.

摘要

激光粉末床熔融(LPBF)是用于制造金属零件的增材制造方法之一。为满足设计要求,LPBF工艺链可能会变得冗长复杂。这项工作旨在使用不同的激光技术替代传统的后处理工艺,以增加应用价值和新视角,同时简化工艺链。使用连续波激光进行激光抛光(LP)以提高零件的表面质量,并应用超短脉冲激光对其进行功能化处理。每种技术单独或组合使用时,都按照工艺链的不同阶段进行。除去除粗糙度外,LP处理后的样品接触角处于亲水性范围内。相比之下,所有功能化表面均呈现疏水性。这些样品上以氧化物为主,而在第二个激光加工步骤之前,还观察到了TiN和TiC的存在。细胞生长活力研究表明,所应用的任何后处理均未对零件的生物相容性产生负面影响。所提出的方法被认为是在零件局部区域实现不同功能、替代工艺链某些步骤或两者结合的合适后处理选项。

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