DOI | Resolve DOI: https://doi.org/10.1504/IJSURFSE.2014.060500 |
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Author | Search for: Cai, F.; Search for: Miyata, C.; Search for: Huang, X.; Search for: Yang, Q.1 |
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Affiliation | - National Research Council of Canada. Aerospace
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Format | Text, Article |
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Subject | Bioactivity; Composite coatings; Composite materials; Glass bonding; Microhardness; Microstructure; Phosphate minerals; Plasma jets; Plasma spraying; Sintering; Wear of materials; Wear resistance; Apatite layers; Corrosion behaviour; Glass particles; Medical implants; Monolithic coatings; Porous structures; Resistance analysis; Simulated body fluids; Chromate coatings |
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Abstract | A sintered Co-Cr-Mo/Bioglass® composite coating, developed for medical implant application, is examined and compared to plasma-sprayed and sintered monolithic Co-Cr-Mo coatings. In addition to microstructure and wear resistance analysis, the bioactivities and corrosion behaviours of various coatings are assessed using simulated body fluid (SBF) immersion. The sintered Co-Cr-Mo/Bioglass® composite and monolithic Co-Cr-Mo coatings have more porous structure than the plasma sprayed Co-Cr-Mo coating. Although the Co-Cr-Mo/Bioglass® composite coating has adequate bonding between Co-Cr-Mo powder and glass particles, the wear resistance is lower than the plasma sprayed Co-Cr-Mo and Stellite 21 substrate. After SBF immersion, calcium is present on the Co-Cr-Mo/Bioglass composite coating, but not on the Co-Cr-Mo coating. It indicates the formation of an apatite layer on the Co-Cr- Mo/Bioglass composite coating and potentially better bioactivity than the monolithic coatings. Copyright © 2014 Inderscience Enterprises Ltd. |
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Publication date | 2014 |
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In | |
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Language | English |
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Peer reviewed | Yes |
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NPARC number | 21272139 |
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Export citation | Export as RIS |
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Report a correction | Report a correction (opens in a new tab) |
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Record identifier | aab52aae-09cd-4cf5-a79a-42725813943d |
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Record created | 2014-07-23 |
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Record modified | 2020-04-22 |
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