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Types of wear and tear of biomaterials used in orthopaedic surgery

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: Purpose of this paper is presentation of observations on different kinds of wear and tear of biomaterials used in contemporary orthopaedic surgery. Design/methodology/approach: Types of prosthesis damage, encountered in medical practice, and their causes have been described. Results of many clinical studies were analysed to review prosthesis damage from the stage of implanting (such as intrusion of a foreign object between its components) to their natural wear and tear after many years of use (abrasive wear, biological corrosion). Findings: It has been shown that prostheses heads may also succumb to quick wear and tear despite being made of harder and more durable materials than sockets. Research limitations/implications: Clinical and laboratory of defective implants discover the reasons of damage, but they are time consuming. There are also difficulties in obtaining objects for research. Originality/value: The research has helped to systematise the knowledge on the mechanisms of wear and damage of endoprostheses, which is vital for improvement of their life cycle.
Rocznik
Strony
83--89
Opis fizyczny
Bibliogr. 35 poz., rys.
Twórcy
autor
  • Department of Dental Techniques, Medical University of Lodz, ul. Pomorska 251, 92-231 Łódź, Poland
autor
  • Institute of Materials Science and Engineering, Lodz University of Technology, ul. Stefanowskiego 1/15, 90-924 Łódź, Poland
autor
  • Department of Materials and Welding Engineering, Faculty of Mechanical Engineering, Gdansk University of Technology, ul. Narutowicza 11/12, 80-233 Gdańsk, Poland
Bibliografia
  • 1] A. Morecki, J. Ekiel, K. Fidelus, Motion bionics, Rudiments of external control of biomechanisms and human limbs. Publishing house PWN, Warsaw, 1971 (in Polish).
  • [2] M. Gierzyńska-Dolna, Biotribology. Częstochowa University of Technology Press, Częstochowa, 2002 (in Polish).
  • [3] I. Chuchnowska, A. Sękala, Application of interactive rehabilitation equipment for kinesitherapy of children with lower limbs dysfunction, Journal of Achievements in Materials and Manufacturing Engineering 53/1 (2012) 14-20.
  • [4] J. Strittmatter, P. Gümpel, V. Gheorghita, Shape memory actuators - potentials and specifics of their technical use and electrical activation, Journal of Achievements in Materials and Manufacturing Engineering 55/2 (2012) 368-377.
  • [5] A. Ślósarczyk, J. Czechowska, Z. Paszkiewicz, A. Zima, New bone implant material with calcium sulfate and Ti modified hydroxyapatite, Journal of Achievements in Materials and Manufacturing Engineering 43/1 (2010) 170-177.
  • [6] Ľ. Rehák, M. Žitňanský, I. Šoltés, J. Horecký, Follow up of biocompatibity of new total hip joint endoprosthesis in a canine model, Journal of Achievements in Materials and Manufacturing Engineering 43/1 (2010) 260-263.
  • [7] M. Žitňanský, ď. ýaploviþ, ď. Rehák, F. Makai, Investigation and implantation of endo-prosthesis in biological experiment on animals, Journal of Achievements in Materials and Manufacturing Engineering 24/1 (2007) 146-152.
  • [8] M. Balazic, J. Kopac, Improvements of medical implants based on modern materials and new technologies, Journal of Achievements in Materials and Manufacturing Engineering 25/2 (2007) 31-34.
  • [9] M. Boujelbene, P. Abellard, E. Bayraktar, S. Torbaty, Study of the milling strategy on the tool life and the surface quality for knee prostheses, Journal of Achievements in Materials and Manufacturing Engineering 31/2 (2008) 610-615.
  • [10] R. Hall, A. Unsworth, Friction in hip prostheses, Biomaterials 18 (1997) 1017-1026.
  • [11] P. Kumar, M. Oka, K. Ikeuchi, K. Shimizu, T. Yamamuro, H. Okumura, Y. Kotoura, Low wear rate of PEUHMW against zirconia ceramic (Y-PSZ) in comparison to alumina ceramic and SUS 316L alloy, Journal of Biomedical Materials Research 25/7 (1991) 813-828.
  • [12] H. Oonishi, M. Kuno, E. Tsuji, A. Fujisawa, The optimum dose of gamma radiation-heavy doses to low wear polyethylene in total hip prostheses, Journal of Materials Science: Materials in Medicine 8 (1997) 11-18.
  • [13] M. Podrez-Radziszewska, D. Bąkowski, M. Lachowicz, W. Głuszewski, W. Dudziński, Characterisation of hardness and durability of UHMWPE following irradiation with an electron beam, Materials Engineering 2 (2006) 75-78.
  • [14] M. Podrez-Radziszewska, M. Lachowicz, K. Haimann, W. Dudziński, Change of mechanical properties and crack development in UHMWPE after irradiation, Materials Engineering 3 (2006) 651-654.
  • [15] M. Podrez-Radziszewska, M. Lachowicz, K. Haimann, W. Dudziński, Microscopic analysis of the mechanism of UHMWPE wear and tear in joint prostheses, Tribology 2 (2005) 67-83.
  • [16] M. Podrez-Radziszewska, K. Haimann, W. Dudziński, The effect of wear of materials used in endoprostheses on the aseptic loosening, Acta of Bioengineering and Biomechanics 4 (2002) 699-700.
  • [17] P. Kowalewski, Modelling of friction in the knee joint prosthesis, Ph.D. Thesis, Wroclaw University of Technology, 2007.
  • [18] P. Barnett, J. Fisher, D. Auger, M. Stone, E. Ingham, Comparison of wear in total knee replacement under different kinematic condition, Journal of Materials Science: Materials in medicine 12 (2001) 1039-1042.
  • [19] H. Cho, W. Wei, H. Kao, C. Cheng, Wear behaviour of PE-UHMW sliding on artificial hip arthroplasty materials, Materials Chemistry and Physics 88 (2004) 9-16.
  • [20] A. Galvin, J. Tipper, E. Ingham, J. Fisher, Nanometre size wear debris generated from crosslinked and non-crosslinked ultra high molecular weight polyethylene in artificial joints, Wear 259 (2005) 977-983.
  • [21] M. Gispert, A. Serro, R. Colaço, B. Saramago, Friction and wear mechanisms in hip prosthesis, Comparison of joint materials behaviour in several lubricants, Wear 260 (2006) 149-158.
  • [22] R. Hall, A. Unsworth, Friction in hip prostheses, Biomaterials 18 (1997) 1017-1026.
  • [23] G. Liu, Y. Chen, H. Li, A study on sliding wear mechanism of ultrahigh molecular weight polyethylene/polypropylene blends, Wear 256 (2004) 1088-1094.
  • [24] H. McEwen, P. Barnett, C. Bell, R. Farrar, D. Auger, M. Stone, J. Fisher, The influence of design, materials and kinematics on the in vitro wear of total knee replacements, Journal of Biomechanics 38 (2005) 357-365.
  • [25] M. Ohta, S. Hyon, S. Tsutumi, Control of crystalline orientation to enhance the wear resistance of ultrahigh molecular weight polyethylene crystallization cups for artificial joints, Wear 255 (2003) 1045-1050.
  • [26] W. Shi, H. Dong, T. Bell, Tribological behaviour and microscopic wear mechanisms of PE-UHMW sliding against thermal oxidation-treated Ti6Al4V, Materials Science and Engineering A291 (2000) 27-36.
  • [27] W. Shi, X. Li, H. Dong, Improved wear resistance of ultra-high molecular weight polyethylene by plasma immersion ion implantation, Wear 250 (2001) 544-552.
  • [28] C. Zhu, O. Jacobs, R. Jaskulka, W. Köller, W. Wu, Effect of counterpart materialand water lubrication on the sliding wear performance of crosslinked and non-crosslinked ultra high molecular weight polyethylene, Polymer Testing 23 (2004) 665-673.
  • [29] P. Barbour, D. Barton, J. Fisher, The influence of contact stress on the wear of PE-UHMW for total replacement hip prostheses, Wear 181-183 (1995) 250-257.
  • [30] B. Fregly, W.Sawyer, M. Hartman, S. Banks, Computational wear prediction of a total knee replacement from in vivo kinematics, Journal of Biomechanics 38 (2005) 305-314.
  • [31] D. Mazzucco, M. Spector, Effects of contact area and stress on the volumetric wear of ultrahigh molecular weight polyethylene, Wear 254 (2003) 514-522.
  • [32] A. Wang, A unified theory of wear for ultra-high molecular weight polyethylene in multi-directional sliding, Wear 248 (2001) 38-47.
  • [33] Y. Wang, J. Li, Sliding wear behaviour and mechanism of ultra-high molecular weight polyethylene, Materials Science and Engineering A266 (1999) 155-160.
  • [34] B. Derbyshire, J. Fisher, D. Dowson, C. Hardaker, K. Brummitt, Wear of PE-UHMW sliding against untreated, titanium nitridecoated and hardcor-treated stainless counterfaces, Wear 181-183 (1995) 258-262.
  • [35] I.C. Clarke, M.T. Manley, How do alternative bearing surfaces influence wear behaviour?, The Journal of the American Academy of Orthopaedic Surgeons 16/1 (2008) 86-93.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-2b6c8de0-3e94-4907-84e7-2a63aabf5bcf
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