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The determination of abrasion resistance of selected biomaterials for the friction pairs in the hip joint endoprosthesis

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The key requirement for the modern endoprosthesis is high durability of the friction components, which results in long and trouble-free operation in the human body. The durability of currently used endoprosthesis is often limited by tribological wear processes of friction components (e.g. between the head and the acetabular component in a hip joint endoprosthesis) [8, 19, 23, 24]. In order to compare the tribological wear, tribological tests were carried out by means of tribometer on friction pairs of the following composition: implantation steel 316 LVM/PE-UHMW and titanium alloy Ti13Nb13Zr/PE-UHMW. Determining of the friction coefficient, measured profiles of surface roughness and microscopic observation allowed to evaluate the abrasive wear of the tested biomaterials.
Rocznik
Strony
53--63
Opis fizyczny
Bibliogr. 25 poz., rys., tab., wykr.
Twórcy
autor
  • Gdansk University of Technology, Faculty of Mechanical Engineering, Department of Materials and Welding Engineering, Gdansk, Poland
autor
  • Gdansk University of Technology, Faculty of Mechanical Engineering, Department of Materials and Welding Engineering, Gdansk, Poland
  • Gdansk University of Technology, Faculty of Mechanical Engineering, Department of Machine Design and Automotive Technology, Gdansk, Poland
Bibliografia
  • 1. Cho H., Wei W., Kao H., Cheng C.: Wear behavior of PE-UHMW sliding on artificial hip arthroplasty materials. Materials Chemistry and Physics, 88 (2004), 9-16.
  • 2. Deptuła P., Grądzka-Dahlke M., Dąbrowski J. R.: Investigation of near beta-phase titanium implant alloys produced by the powder metallurgy method [in Polish]. Inżynieria Materiałowa 2009/5, (2009), 455-457.
  • 3. Domingo J.: Vanadium and diabetes. What about vanadium toxicity? Molecular and Cellular Biochemistry 203 (2000), 185-187.
  • 4. Gierzyńska-Dolna M., Sulej-Chojnacka J., Wiśniewski T., Rybak T.: New materials for knee endoprosthesis pads [in Polish]. Tribologia, rok XLI nr 5/2010 (2010), 223-233.
  • 5. Gispert M., Serro A., Colaco R., Saramago B.: Friction and mechanisms in hip prosthesis: Comparison of joint materials behaviour in several lubricants. Wear 260 (2006), 149-158.
  • 6. Hermawan H., Ramdan D., Djuansjah J.: Metals for Biomedical Applications. Biomedical Engineering - From Theory to Applications. InTech Pub, Croatia (2011), 411-430.
  • 7. Jedynak B., Mierzwińska-Nastalska E.: Titanium – its properties and application in prosthetic dentistry. Dental Forum, Protetyka Stomatologiczna 1/2013/XXXXI (2013), 224-233.
  • 8. Kozierski C., Trzaskacz T., Ferenc Z.: Tribological properties of degenerate synovial joints [in Polish]. Tribologia, XLI nr 4/2010 (2010), 211-222.
  • 9. Krasicka-Cydzik E., Mstowski J., Ciupik F.: Metallic implant materials: implant steel and titanium alloys. System DERO, Zielona Góra: LfC (2005), 81-91.
  • 10. Kumar P., Oka M., Ikeuchi K., Shimizu K., Yamamuro T., Okumura H., Kotoura Y.: Low wear rate of PEUHMW against zirconia ceramic (Y-PSZ) in comparison to alumina ceramic and SUS 316L alloy. Journal of Biomedical Materials Research, Volume 25, Issue 7, (1991), 813-828.
  • 11. Li X., Dong H., Shi W.: New insights into wear of Ti6Al4V by ultra-high molecular weight polyethylene under water lubricated conditions. Wear 250, (2001), 553-560.
  • 12. Łubiński J., Olszewski H., Olszewski A.: A multi-mass discrete model of tribometer for the research on dynamic friction characteristics. Tribologia, XLI, 6/2010 (2010), 69-78.
  • K. Zasińska, T. Seramak, J. Łubiński: The determination of abrasion resistance of selected .... 63
  • 13. Marciniak J.: Biomaterials in bone surgery [in Polish]. Wydawnictwo Politechniki Śląskiej, Gliwice (1992).
  • 14. Marciniak J.: Biomaterials [in Polish]. Wydawnictwo Politechniki Śląskiej, Gliwice (2002).
  • 15. Morlock M., Schneider E., Bluhm A., Vollmer M., Bergmann G., Müller V., Honl M.: Duration and frequency of everyday activities in total hip patients. Journal of Biomechanics 34 (2001), 873-881.
  • 16. Munuera C., Matzelle T., Kruse N. at all.: Surface elastic properties of Ti alloys modified for medical implants: A force spectroscopy study, Acta Biomaterialia 3 (2007), 113-119.
  • 17. Okazaki Y.: Ito: New Ti alloy without Al and V for medical implants, Advanced Engineering Materials, Volume 2, Issue 5 (2000), 278-281.
  • 18. Pawelec Z., Molenda J., Wolszczak M.: Abrasive wear resistance of metal-polymer composites [in Polish]. Tribologia, XLI nr 5/2010 (2010), 117-130.
  • 19. Pawlak Z., Jurvelin J., Urbaniak W.: Biotribochemistry of the lubrication of natural joints [in Polish]. Tribologia, XLI nr 5/2010 (2010), 131-141.
  • 20. Saikko V.: A simulator study of friction in total replacement hip joints. Proc. Inst. Mech. Engrs, 206, (1992), 201-211.
  • 21. Seramak T., Serbiński W., Zieliński A.: Porous biomaterial for orthopedic implants based on titanium alloy. Advances in Materials Science, Vol. 11, 1 (2011), 27-34.
  • 22. Serbiński W., Zieliński A., Seramak T., Ossowska A., Sobieszczyk S., Supernak M., Majkowska B.: Surface treatment of porous Ti13Nb13Zr alloy for biomedical applications [in Polish]. Inżynieria Materiałowa 2012/1 (2012), 6-12.
  • 23. Wendland J., Gierzyńska-Dolna M., Rybak T., Wiśniewski T., Rajchel B.: Investigation for a new biomaterial for the hip endoprostheses elements [in Polish]. Obróbka Plastyczna Metali, XX, 2 (2009), 1-17.
  • 24. Wendland J., Wiśniewski T., Rybak T., Gierzyńska-Dolna M.: Preliminary research on new solutions concerning biomaterials used for endoprostheses' friction elements [in Polish]. Obróbka Plastyczna Metali XIX, 1 (2008), 1-5.
  • 25. http://www.tribologia.eu/ptt/inst/polGdanKoEksMa.htm
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e052cd19-cfc2-4ddb-9c52-5777f1b4912f
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