Effect of pulse laser treatment at different process variables on mechanical behavior of carbon nanotubes electrophoretically deposited on titanium alloy.

IF 0.8 4区 医学 Q4 BIOPHYSICS
Beata Majkowska-Marzec, Kacper Staszewski, Joanna Sypniewska
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引用次数: 0

Abstract

Purpose: Titanium and its alloys are widely used as biomaterials for long-term implants, but they are usually surface-modified due to their weak bioactivity and wear resistance. Laser processing was used to modify the surface layer, and elemental carbon was a component of the deposited coatings. This research aims to use a combination of both methods based on preliminary electrophoretic deposition of multi-wall carbon nanotubes (MWNCTs) followed by pulse laser treatment. Carbon nanotubes were chosen due to their mechanical and chemical stability as well as their tubular shape, resulting in enhanced mechanical properties of laser-modified layers.

Methods: The pulse laser power and laser scanning speed were defined as variable process parameters. The microstructure, roughness Ra, nanohardness H, Young's modulus E, and indent depth values were measured, and the H/E, H 3/E2, and relative changes of all these values in comparison to MWCNTs-coated and non-coated surfaces, were calculated.

Results: The obtained results show that the best mechanical properties of MWCNTs-coated and laser-treated specimens are obtained at a laser power of 900 W and laser feed of 6 mm/s. The observed relations can be explained considering processes occurring on the surface such as deposition of carbon nanotubes, melting and re-crystallization of the surface layer, formation and possible partial decomposition of titanium carbides, and associated changes in local chemical composition, phase composition, and a level of residual stresses beneath the surface.

Conclusions: The developed process can substitute the time and money-consuming carbonization of titanium and its alloys.

不同工艺变量下的脉冲激光处理对电泳沉积在钛合金上的碳纳米管力学行为的影响
目的:钛及其合金被广泛用作长期植入物的生物材料,但由于其生物活性和耐磨性较弱,通常需要对其进行表面改性。激光加工被用来修饰表层,元素碳是沉积涂层的成分之一。本研究的目的是在多壁碳纳米管(MWNCTs)初步电泳沉积和脉冲激光处理的基础上,将这两种方法结合使用。之所以选择碳纳米管,是因为它们具有机械和化学稳定性以及管状形状,可增强激光改性层的机械性能:方法:将脉冲激光功率和激光扫描速度定义为可变工艺参数。测量了微观结构、粗糙度 Ra、纳米硬度 H、杨氏模量 E 和压痕深度值,并计算了 H/E、H 3/E2 以及与 MWCNTs 涂层表面和非涂层表面相比所有这些值的相对变化:结果表明,当激光功率为 900 W、激光进给速度为 6 mm/s 时,MWCNT 涂层和激光处理试样的机械性能最佳。观察到的关系可以用表面发生的过程来解释,如碳纳米管的沉积、表层的熔化和再结晶、钛碳化物的形成和可能的部分分解,以及与之相关的局部化学成分、相组成和表面下残余应力水平的变化:结论:所开发的工艺可替代耗时耗钱的钛及其合金碳化工艺。
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
Acta of bioengineering and biomechanics
Acta of bioengineering and biomechanics BIOPHYSICS-ENGINEERING, BIOMEDICAL
CiteScore
2.10
自引率
10.00%
发文量
0
期刊介绍: Acta of Bioengineering and Biomechanics is a platform allowing presentation of investigations results, exchange of ideas and experiences among researchers with technical and medical background. Papers published in Acta of Bioengineering and Biomechanics may cover a wide range of topics in biomechanics, including, but not limited to: Tissue Biomechanics, Orthopedic Biomechanics, Biomaterials, Sport Biomechanics.
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