Modeling of material removal by magnetic abrasive finishing of the inner wall of Co-Cr alloy cardiovascular stent tube with diamond magnetic abrasive powder prepared by plasma melting

被引:0
作者
Zhihao Li
Yugang Zhao
Guangxin Liu
Chen Cao
Chuang Zhao
Hanlin Yu
Haiyun Zhang
Dandan Zhao
机构
[1] Shandong University of Technology,School of Mechanical Engineering
来源
The International Journal of Advanced Manufacturing Technology | 2024年 / 132卷
关键词
Magnetic abrasive finishing; Co-Cr alloy cardiovascular tube; Diamond particle; Material removal; Surface roughness;
D O I
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中图分类号
学科分类号
摘要
This study describes the application of a magnetic abrasive finishing process (MAF) to the inner wall of the Co-Cr alloy cardiovascular tube to obtain a fine surface roughness and improve the surface quality. The high-performance spherical iron-based diamond magnetic abrasive powder (MAP) used in the experiments was prepared via combining plasma molten metal powder with sprayed abrasive powder. The experiments were carried out on a MAF machining machine for slender tubes, with permanent slotted magnets as the magnetic field-generating device. The processing mechanism of the MAF on the inner wall of the tube was analyzed, and the magnitude and distribution of the magnetic flux in the processed area were simulated by software. The material removal model for MAF processing of the inner wall of the tube was constructed from mechanical properties of magnetic abrasives and the workpiece and five applied process parameters: finishing time, tube rotational speed, magnetic feed rate, size of MAPs, and filling quantity of MAPs. Single-factor experiments were designed and carried out using surface roughness Ra and quality differences before and after MAF processing as evaluation indicators. The results were used to analyze the relationship between five process parameters and surface roughness Ra and material removal MR. Scanning electron microscopy was used to observe the effect of the MAF process on the surface quality. It shows that the MAF process can effectively remove the defective layer from the workpiece and improve its surface smoothness and quality. The surface roughness Ra of 0.46–0.49 μm before finishing was decreased to 0.093 μm with optimal process parameters.
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页码:1267 / 1281
页数:14
相关论文
共 106 条
[1]  
Korei N(2022)A review on design characteristics and fabrication methods of metallic cardiovascular stents Mater Today Commun 31 103467-4757
[2]  
Solouk A(2021)Advances in coatings on magnesium alloys for cardiovascular stents – a review Bioact Mater 6 4729-715
[3]  
Nazarpak MH(2022)Optimal design of vascular stents using a network of 1D slender curved rods Comp Methods Appl Mech Eng 394 114853-613
[4]  
Nouri A(2017)Study of corrosion in biocompatible metals for implants: a review J Alloys Compounds 701 698-e135
[5]  
Zhang ZQ(2022)Current status and future direction of metallic and polymeric materials for advanced vascular stents Progr Mater Sci 126 100922-2535
[6]  
Yang YX(2023)Lasers in the manufacturing of cardiovascular metallic stents: subtractive and additive processes with a digital tool Proc Comp Sci 217 604-16
[7]  
Li JA(2017)The influences of assisting gas type and process parameters on the fiber laser microprofiling of thin CoCr tubes for vascular stents Appl Sci 7 608-482
[8]  
Zeng RC(2015)Auxetic coronary stent endoprosthesis: fabrication and structural analysis J Appl Biomater Funct Mater 13 e127-804
[9]  
Guan SK(2016)Production process of biocompatible magnesium alloy tubes using extrusion and dieless drawing processes J of Materi Eng and Perform 25 2528-2123
[10]  
Čanić S(2017)Cyclic extrusion compression angular pressing (CECAP) as a novel severe plastic deformation method for producing bulk ultrafine grained metals Mater Lett 197 12-719