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Splat formation and degradation of hydroxyapatite during plasma spraying process

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Plasma spraying is most used thermal spray process for coating of bioceramic and bioinert materials. It is line of sight technique, easy to use and inexpensive as compared to other processes used for coatings. The main disadvantage of this technique for coating hydroxyapatite (HA) is that due to high temperature of plasma (of the order of 16000°C) HA tends to degrade into amorphous calcium phosphates. These amorphous phases are not desirable and have a tendency to dissolve in body environment. In this article an attempt has been made to understand the plasma spraying process for coating of hydroxyapatite.
Słowa kluczowe
Rocznik
Strony
26--36
Opis fizyczny
Bibliogr. 24 poz., rys., tab.
Twórcy
autor
autor
autor
  • Indian Institute of Technology Roorkee, Department of Metallurgical and Materials Engineering, Civil Lines, Roorkee, Uttarakhand, India, manojmittal74@yahoo.com
Bibliografia
  • 1. Rossnagel S. M. Cuomo J. J. Westwood W. D.: Handbook of plasma processing technology: fundamentals, etching, deposition and surface interaction, Noyes Publication, Park Ridge, N.J 1990.
  • 2. Golant V. E. Zhilinsky A. P. Sakharov I. E. Brown S. C.: Fundamental of plasma physics, Wiley, New York 1980.
  • 3. Leung K. Heberlein J. Pfender E.: Particle trajectory control with the use of different carrier gases, Proc. of 8th National Thermal Spray Conference on Thermal Spray Science and Technology, (ed.) Berndt C. C. Sampath S., Houston, Texas, 1995.
  • 4. Wolke J. G. C. Klein C. P. A. T. de Groot K.: Bioceramics for maxillofacial applocattions, bioceramic and the human body, (ed.) Ravaglioli A. Krajewski A. Elsevier, Amsterdam, 1991
  • 5. Fauchais P.: Understanding plasma spraying, J. Physics: Applied Physics, 37 (2004), R86
  • 6. Pawlowski L.: the science and engineering of thermal spray coatings, Wiley, New York 1995.
  • 7. Dyshlovenko S. Pateyron B, Pawlowski L. Murano D.: Numerical simulation of hydroxyapatite powder behavior in plasma jet, Surf. Coat. Technol., 179 (2004), 110-117.
  • 8. Tong W. Yang Z. Zhang X. Yang A. Feng J. Cao Y. Chen J.: Studies of diffusion maximum in x-ray diffraction pattern of plasma-sprayed hydroxyapatite coatings, J. Biomed. Mater. Res., 40 (1998), 407-413.
  • 9. Oosterbos C. J. M. Rahmy A. I. A. Tonino A. J. Witpered W.: High survival rate of hydroxyapatite-coated hip prostheses 100 consecutive hips followed for 10 years, Acta Orthop. Scand., 75 (2004), 127-133.
  • 10. Fantassi S. Vardelle M. Fauchais P. Moreau.: Investigation of the splat formation versus different particulate temperature and velocities prior to impact, Proc. Thermal Spray: International Advances in Coatings Technology, (ed.) Berndt. C. C., 13th International Thermal Spray, Orlando, Florida 1992
  • 11. Yankee S. J. Pletka B. J.: Microstructural analysis of impacted hydroxyapatite droplets, Proc. Thermal Spray: International Advances in Coatings Technology, (ed.) Berndt C. C. 13th International Thermal Spray, Orlando, Florida,1992
  • 12. Tong W. Yang Z. Zhang X. Yang A. Feng J. Cao Y Chen J.: Studies on diffusion in x-ray diffraction patterns of plasma sprayed hydroxyapatite coatings, J. Biomed. Mater. Res. Vol. 40 (1998), 407-413.
  • 13. Le Geros R. Z. Le Geros, J. P.: Dense Hydroxyapatite, An introduction to bioceramics, (ed.), Hench L. L. Wilson J. World Scientific, London, 1993, 139-180
  • 14. Ji H. Pinton C. B. Marquis P. M.: Microstructural characterization of hydroxyapatite coatings on titanium, J. Mater. Sci.-Mater. Med., 3, (1992), 283
  • 15. Sun L. Christopher Bernd, C.C. Grey C.P.: Phase, structural and microstructural investigations of plasma spray hydroxyapatite coatings, Mater. Sci. Eng. A, 36 (2003), 40-84.
  • 16. Liao C. Lin F. Chen K. Sun J.: Thermal decomposition and reconstitution of hydroxyapatite in air atmosphere, Biomaterials, 20 (1999), 1807-1813.
  • 17. Sridhar T. M. Kamachi Mudali U. Subbaiyan M.: Sintering atmosphere and temperature effect on hydroxyapatite coated type 316l stainless steel, Corros. Sci., 45 (2003) 2337-2359.
  • 18. Heimann R. B.: Thermal spraying of biomaterials”, Surf. Coat. Technol., 201 (2006), 2012-2019.
  • 19. Fang Y. Agrawal D. K. Roy D. M.: Thermal stability of hydroxyapatite, hydroxyapatite and related material, (ed.) Brown P. W. and Constantz B. CRC Press, London, 1994
  • 20. Park E. Condrate Sr. R. A. Lee D. Kociba K. Gallagher P. K.: Characterization of hydroxyapatite: before and after plasma spraying, j. Mater. Sci. Mater. Med., 13 (2002), 211-218.
  • 21. Tampieri A. Celotti G. Sprio S. Mingazzini C.: Characterization of synthatic hydroxyapatite and attempt to improve their thermal stability, Mater. Chem. Phys., 64 (2000), 54-61.
  • 22. Lazic S. Zee S. Miljevic N. Milonjic S.: The effect of temperature on the properties of hydroxyapatite precipitated from calcium hydroxide and phosphoric acid, Thermochim. Acta, 374 (2001), 13-22.
  • 23. Deram V. Minichiello R. Le Maguer A. Pawlowski L. Murano D.: Microstructural characterization of plasma sprayed hydroxyapatite coatings, Surf. Coat. Technol., 166 (2003), 153-159.
  • 24. Klein C. P. A. T. Wolke J. G. C. de Groot K.: Stability of calcium phosphate ceramics and plasma spary coating, ‘In’ An Introduction to Bioceramic, (ed.) Hench L. L. Wilson J. World Scientific, London, 192-221, 1993
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPG8-0049-0027
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