Wear Resistance of Plasma Electrolytic Oxidation Coatings on Ti-6Al-4V Eli Alloy Processed by Additive Manufacturing

被引:16
作者
Santos, Pedro Bell [1 ]
de Castro, Victor Velho [1 ]
Baldin, Estela Kerstner [1 ]
Aguzzoli, Cesar [2 ]
Longhitano, Guilherme Arthur [3 ,4 ]
Jardini, Andre Luiz [3 ,4 ]
Najar Lopes, Eder Socrates [3 ,5 ]
Helgueira de Andrade, Antonio Marcos [6 ]
Malfatti, Celia de Fraga [1 ]
机构
[1] LAPEC Univ Fed Rio Grande do Sul UFRGS, Ave Bento Goncalves, BR-91501970 Porto Alegre, RS, Brazil
[2] Univ Caxias do Sul, PGMAT Programa Posgrad Engn Mat PGMAT, Rua Francisco Getulio Vargas, BR-95070560 Caxias Do Sul, RS, Brazil
[3] BIOFABRIS Inst Biofabricacao INCT BIOFABRIS, Av Albert Einstein, BR-95070560 Campinas, SP, Brazil
[4] Univ Estadual Campinas UNICAMP, FEQ Fac Engn Quim, Ave Albert Einstein, BR-13083852 Campinas, SP, Brazil
[5] Univ Estadual Campinas UNICAMP, FEM Fac Engn Mecan, Rua Mendeleyev, BR-13083860 Campinas, SP, Brazil
[6] Univ Fed Rio Grande do Su UFRGS, Inst Fis, Ave Bento Goncalves, BR-91501970 Porto Alegre, RS, Brazil
基金
巴西圣保罗研究基金会;
关键词
powder bed fusion; DMLS; surface functionalization; osseointegration; bioactive surface; MICRO-ARC OXIDATION; TI6AL4V ALLOY; IN-VITRO; TRIBOLOGICAL PROPERTIES; CORROSION BEHAVIOR; TITANIUM-ALLOY; PEO; HYDROXYAPATITE; LASER; TI;
D O I
10.3390/met12071070
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The additive manufacturing (AM) technique can produce Ti-6Al-4V ELI (extra low interstitial) alloy for personalized biomedical devices. However, the Ti-6Al-4V ELI alloy presents poor tribological behavior. Regarding this, coatings are a feasible approach to improve the wear resistance of this alloy. In the literature, the tribological behavior of TiO2 coatings incorporated with Ca and P formed by one-step plasma electrolytic oxidation (PEO) on Ti-6Al-4V ELI alloy processed by AM has not been investigated. Thus, in the present work, it was studied the influence of Ti-6Al-4V ELI alloy processed by AM on the wear resistance and morphologic of the coating obtained by PEO (plasma electrolytic oxidation). In this way, three different voltages (200, 250, and 300 V) were employed for the PEO process and the voltage effect on the properties of the coatings. The coatings were characterized by contact profilometry, scanning electron microscopy, energy-dispersive spectroscopy, the sessile drop method, grazing-incidence X-ray diffraction, and wear tests, on a ball-on-plate tribometer. The increase in applied voltage promoted an increase in roughness, pore area, and a decrease in the pore population of the coatings. In addition, the coatings, mainly composed of anatase and rutile, showed good adhesion to the metallic substrate, and the presence of bioactive elements Ca and P were detected. The thickness of the coatings obtained by PEO increases drastically for voltages higher than 250 V (from 4.50 +/- 0.33 to 23.83 +/- 1.5 mu m). However, coatings obtained with lower voltages presented thin and dense layers, which promoted a superior wear resistance (increase in wear rate from 1.99 x 10(-6) to 2.60 x 10(-5) mm(3)/s). Finally, compared to the uncoated substrate, the PEO coatings increased the wear resistance of the titanium alloy obtained by AM, also showing a superior wear resistance compared to the commercial Ti-6Al-4V alloy previously evaluated, being such a positive and promising behavior for application in the area of metallic implants.
引用
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页数:15
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