Formation of hydroxyapatite layer on Ti–6AL–4V ELI alloy by fine particle peening

被引:0
作者
Kikuchi S. [1 ]
Nakamura Y. [2 ]
Nambu K. [3 ]
Akahori T. [4 ]
机构
[1] Department of Mechanical Engineering, Graduate School of Engineering, Kobe University, 1-1 Rokkodai-cho, Nada-ku, Kobe
[2] Department of Mechanical Engineering, National Institute of Technology, Toyota College, 2-1 Eisei-cho, Toyota
[3] Toyota Technological Institute, 2-12-1 Hisakata, Tempaku-ku, Nagoya
[4] Department of Materials Science and Engineering, Faculty of Science and Technology, Meijo University, 1-501 Shiogamaguchi, Tempaku-ku, Nagoya
关键词
Biomaterial; Fatigue; Fine particle peening; Hydroxyapatite; Titanium alloy;
D O I
10.20965/ijat.2017.p0915
中图分类号
学科分类号
摘要
Fine particle peening (FPP) using hydroxyapatite (HAp) shot particles can form a HAp layer on room-temperature substrates by the transfer and mi-crostructural modification of the shot particles. In this study, FPP with HAp shot particles was applied to form a HAp surface layer and improve the fatigue properties of Ti–6Al–4V extra-low interstitial (ELI) for use in bio-implants. The surface microstructures of the FPP-treated specimens were characterized by micro-Vickers hardness testing, scanning electron microscopy, energy-dispersive X-ray spectrometry, X-ray diffraction, and X-ray photoelectron spectroscopy. FPP with HAp shot particles successfully formed a HAp layer on the surface of Ti–6Al–4V ELI in a relatively short period by shot particle transfer at room temperature; however, the thickness and elemental composition of the HAp layer were independent of the FPP treatment time. The original HAp crystal structure remained in the surface-modified layer formed on Ti–6Al–4V ELI after FPP. Furthermore, FPP increased the surface hardness and generated compressive residual stresses at the treated surface of Ti–6Al– 4V ELI. Four-point bending fatigue tests were performed at stress ratios of 0.1 and 0.5 to examine the effect of FPP with HAp shot particles on the fatigue properties of Ti–6Al–4V ELI. The fatigue life of the FPP-treated specimen was longer than that of the un-peened specimen because of the formation of a work-hardened layer with compressive residual stress. However, no clear improvement in the fatigue limit of Ti– 6Al–4V ELI occurred after FPP with HAp shot particles because of subsurface failures from characteristic facets. © 2017, Fuji Technology Press. All rights reserved.
引用
收藏
页码:915 / 924
页数:9
相关论文
共 44 条
[1]  
Long M., Rack H.J., Titanium Alloys in Total Joint Replacement-A Materials Science Perspective, Biomaterials, 19, pp. 1621-1639, (1998)
[2]  
Rouzrokh A., Wei C.Y.H., Erkorkmaz K., Pillar R.M., Ma-chining Porous Calcium Plyphosphate Implants for Tissue Engineering Applications, Int. J. of Automation Technology, 4, 3, pp. 291-302, (2010)
[3]  
Kokubo T., Miyaji F., Kim H.M., Nakamura T., Spontaneous Formation of BoneLike Apatite Layer on Chemically Treated Titanium Metals, J. of American Ceramics Society, Vol., 79, 4, pp. 1127-1129, (1996)
[4]  
Kim H.M., Himeno T., Kawashita M., Lee J.H., Kokubo T., Nakamura T., Surface Potential Change in Bioactive Titanium Metal during the Process of Apatite Formation in Simulated Body Fluid, J. of Biomedical Materials Research Part A, Vol., 67, pp. 1305-1309, (2003)
[5]  
Heimann R.B., Thermal Spraying of Biomaterials, Surface and Coatings Technology, 201, pp. 2012-2019, (2006)
[6]  
Lazarinis S., Karrholm J., Hailer N.P., Effects of Hydroxyapatite Coating of Cups Used in Hip Revision Arthroplasty, Acta Orthopaedica, 83, pp. 427-435, (2012)
[7]  
Laonapakul T., Nimkerdphol A.R., Otsuka Y., Mutoh Y., Fail-ure Behavior of Plasma-Sprayed HAp Coating on Commercially Pure Titanium Substrate in Simulated Body Fluid (SBF) under Bending Load, J. of Mechanical Behavior of Biomedical Materials, 15, pp. 153-166, (2012)
[8]  
Laonapakul T., Otsuka Y., Nimkerdphol A.R., Mutoh Y., Acoustic Emission and Fatigue Damage Induced in Plasma-Sprayed Hydroxyapatite Coating Layers, J. of Mechanical Behavior of Biomedical Materials, 15, pp. 123-133, (2012)
[9]  
Inagaki M., Yokogawa Y., Kameyama T., Bond Strength Improvement of Hydroxyapatite/Titanium Composite Coating by Partial Nitriding during RF-Thermal Plasma Spraying, Surface and Coatings Technology, 173, pp. 1-8, (2003)
[10]  
Reis R.L., Monteriro F.J., Crystallinity and Structural Changes in HA Plasma-Sprayed Coatings Induced by Cyclic Loading in Physiological Media, J. of Materials Science and Materials in Medicine, 7, pp. 407-411, (1996)