Research on the Impact Toughness of 3D-Printed CoCrMo Alloy Components Based on Fractal Theory.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Guoqing Zhang, Junxin Li, Han Wang, Congcong Shangguan, Juanjuan Xie, Yongsheng Zhou
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Abstract

In order to obtain high-performance 3D printed parts, this study focuses on the key performance indicator of impact toughness. The parametric modeling software Rhino 6 is used to design impact specimens, and the laser selective melting equipment DiMetal-100, independently developed by the South China University of Technology, is used to manufacture impact specimens. Subsequently, the CoCrMo alloy parts were annealed using an MXQ1600-40 box-type atmosphere furnace and subjected to impact testing using a cantilever beam impact testing machine XJV-22. Fractal theory was applied to analyze the fractal behavior of the resulting impact fracture surfaces. The research results indicate that the 3D-printed impact specimens exhibited excellent surface quality, characterized by brightness, low roughness, and the absence of significant defects such as warping or deformation. In terms of annealing treatment, lower annealing temperatures did not improve the impact performance of SLM-formed CoCrMo alloy parts but instead led to a decrease in toughness. While increasing the annealing temperature can improve toughness to some extent, the effect is limited. Furthermore, the relationship between impact energy and heat treatment temperature exhibits a U-shaped trend. The fractal dimension analysis shows that the parts annealed in a 1200 °C furnace have the highest fractal dimension and better toughness performance. This study introduces a novel approach by comprehensively integrating advanced 3D printing technology, annealing processes, and fractal theory analysis to systematically investigate the influence of annealing temperature on the impact properties of 3D-printed CoCrMo alloy parts, thereby establishing a solid foundation for the application of high-performance 3D printed parts.

基于分形理论的3d打印CoCrMo合金部件冲击韧性研究。
为了获得高性能的3D打印部件,本文重点研究了冲击韧性这一关键性能指标。采用参数化建模软件Rhino 6设计冲击试样,采用华南理工大学自主研发的激光选择性熔化设备DiMetal-100制造冲击试样。随后,使用MXQ1600-40箱式气氛炉对CoCrMo合金零件进行退火,并使用XJV-22悬臂梁冲击试验机进行冲击试验。应用分形理论分析了冲击断口的分形特征。研究结果表明,3d打印的冲击试样具有良好的表面质量,具有亮度高、粗糙度低、不存在翘曲、变形等明显缺陷等特点。在退火处理方面,较低的退火温度并没有提高slm成形的CoCrMo合金零件的冲击性能,反而导致韧性下降。提高退火温度可以在一定程度上提高韧性,但效果有限。冲击能与热处理温度之间呈u型关系。分形维数分析表明,在1200℃炉中退火的零件具有最高的分形维数和较好的韧性性能。本研究采用先进3D打印技术、退火工艺和分形理论分析相结合的新方法,系统研究退火温度对3D打印CoCrMo合金零件冲击性能的影响,为高性能3D打印零件的应用奠定坚实的基础。
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
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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