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Tytuł artykułu

On the choice of thickness of the cement mantle in cemented hip arthroplasty

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Recommendations for the optimal thickness of the cement mantle in cemented hip arthroplasty are outlined based on the results obtained with the finite element method. The investigations show that distal femur cement thickness higher than 2 mm positively affects mechanical behaviour of the cement mantle and can be useful in reducing stress-strain levels in the distal part of the femur what leads to prevention of development of a stress-shielding effect. The results of the study can contribute to the success of long-term implants.
Rocznik
Strony
1235--1244
Opis fizyczny
Bibliogr. 29 poz., rys., tab.
Twórcy
autor
  • Lodz University of Technology, Department of Automation, Biomechanics and Mechatronics, Łódź, Poland
  • Lodz University of Technology, Department of Automation, Biomechanics and Mechatronics, Łódź, Poland, and Warsaw University of Technology, Institute of Vehicles, Warszawa, Poland
autor
  • Dnipropetrovsk State Medical Academy, Department of Orthopaedics and Traumatology, Dnipropetrovsk, Ukraine
  • Lodz University of Technology, Department of Automation, Biomechanics and Mechatronics, Łódź, Poland
Bibliografia
  • 1. Bergmann G., Deuretzbacher G., Heller M., Graichen F., Rohlmann A., Strauss J., Duda G.N., 2001, Hip contact forces and gait patterns from routine activities, Journal of Biomechanics, 34, 7, 859-871
  • 2. Bergmann G. (Ed.), 2008, OrthoLoad database, Charit´e-Universit¨atsmedizin Berlin, www.OrthoLoad.com, Accessed on December 10, 2016
  • 3. Bhambri S.K., Gilbertson L.N., 1995, Micromechanisms of fatigue crack initiation and propagation in bone cements, Journal of Biomedical Materials Research, 29, 2, 233-237
  • 4. Cann, C., 1998, Quantitative CT for determination of bone mineral density: a review, Journal of Radiology, 166, 509-522
  • 5. Charnley J., 1960, Surgery of the hip joint, British Medical Journal, 1, 821-826
  • 6. Devis C.M., Berry D.J., Harmsen W.S., 2003, Cemented revision of failed uncemented femoral components of total hip arthroplasty, The Journal of Bone and Joint Surgery, 85-A, 7, 1264-1269
  • 7. Estok D.M., Harrigan T.P., Harris W.H., 1991, Finite element analysis of cement strains at the tip of an idealized cemented femoral component, Transactions of Orthopaedic Research Society, 16, 504
  • 8. Fisher D.A., Tsang A.C., Paydar N., Milionis S., Turner C.H., 1997, Cement-mantle thickness affects cement strains in total hip replacement, Journal of Biomechanics, 30, 11-12, 1173-1177
  • 9. Gunn E, Gundapaneni D, Goswami T., 2012, Effect of cement fill ratio in loosening of hip implants, Biomatter, 2, 2, 87-93
  • 10. Helgason B. Perilli E. Schileo E. Taddei F. Brynjolfsson S. Viceconti M., 2008, Mathematical relationships between bone density and mechanical properties: a literature review, Journal of Clinical Biomechanics, 23, 1, 135-146
  • 11. Heller M.O., Bergmann G., Kassi J.-P., Claes L., Haas N.P., Duda G.N., 2005, Determination of muscle loading at the hip joint for use in pre-clinical testing, Journal of Biomechanics, 38, 5, 1155-1163
  • 12. Huiskes R., 1993, Mechanical failure in total hip arthroplasty with cement, The Journal of Current Orthopaedics, 7, 239-247
  • 13. Jenkins P.J., Clement N.D., Hamilton D.F., Gaston P., Patton J.T., Howie C.R., 2013, Predicting the cost-effectiveness of total hip and knee replacement: a health economic analysis, The Bone and Joint Journal, 95-B, 115-121
  • 14. Khan S.N., Warkhedkar R.M., Shyam A.K., 2014, Analysis of Hounsfield unit of human bones for strength evaluation, Procedia Materials Science, 6 (2014), 512-519
  • 15. Kroell A., Beaul´e P., Krismer M., Behensky H., Stoeckl B., Biedermann R., 2009, Aseptic stem loosening in primary THA: migration analysis of cemented and cementless fixation, Journal of International Orthopaedics, 33, 6, 1501-1505
  • 16. Kuhn K., 2000, Bone Cements: Up-To-Date Comparison of Physical and Chemical Properties of Commercial Materials, Springer, Berlin
  • 17. Laz P.J., Stowe J.Q., Baldwin M.A., Petrella A.J., Rullkoetter P.J., 2007, Incorporating uncertainty in mechanical properties for finite element-based evaluation of bone mechanics, Journal of Biomechanics, 40, 2831-2836
  • 18. Lee I.Y., Skinner H.B., Keyak J.H., 1994, Effects of variation of prosthesis size on cement stress at the tip of a femoral implant, Journal of Biomedical Materials Research, 28, 1055-1066
  • 19. Levadnyi I., Awrejcewicz J., Fagundes-Goethel M., Loskutov A., 2017, Influence of the fixation region of a press-fit hip endoprosthesis on the stress-strain state of the “bone-implant” system, Computers in Biology and Medicine, 84, 195-204
  • 20. Maruyama N., Mori D., Hiromoto S., Kanazawa K., Nakamura M., 2011, Fatigue strength of 316L-type stainless steel in simulated body fluids, Journal of Corrosion Science, 53, 2222-2227
  • 21. Peng L., Bai J., Zeng X., Zhou Y., 2006, Comparison of isotropic and orthotropic material property assignments on femoral finite element models under two loading conditions, Journal of Medical Engineering and Physics, 28, 3, 227-233
  • 22. P´erez M.A., Vendittoli P.-A., Lavigne M., Nuno N. ˜ , 2014, Bone remodeling in the resurfaced femoral head: Effect of cement mantle thickness and interface characteristics, Medical Engineering and Physics, 36, 2, 185-195
  • 23. Shah N., Porter M., 2005, Evolution of cemented stems, Journal of Orthopedics, 28, 8, 819-825
  • 24. Snethen K., 2013, A computed tomography-based model of the infant hip anatomy for dynamic finite element analysis of hip dysplasia biomechanics, HIM 1990-2015, 1465
  • 25. Sullivan P.M., Mackenzie J.R., Callaghan J.J., Johnston R.C., 1994, Total hip arthroplasty with cement in patients who are less than fifty years old. A sixteen to twenty-two-year follow-up study, The Journal of Bone and Joint Surgery, 76, 6, 863-869
  • 26. Warth L.C., Callaghan J.J., Liu S.S., Klaassen A.L., Goetz D.D., Johnston R.C., 2014, Thirty-five-year results after Charnley total hip arthroplasty in patients less than fifty years old. A concise follow-up of previous reports, The Journal of Bone and Joint Surgery. American Volume, 96, 21, 1814-1819
  • 27. Wirtz D.C., Schiffers N., Pandorf T., Radermacher K., Weichert D., Forst R., 2000, Critical evaluation of known bone material properties to realize anisotropic FE-simulation of the proximal femur, Journal of Biomechanics, 33, 10, 1325-1330
  • 28. Yamako G., Chosa E., Zhao X., Totoribe K., Watanabe S., Sakamoto T., Nakane N., 2014, Load-transfer analysis after insertion of cementless anatomical femoral stem using pre- and post-operative CT images based patient – specific finite element analysis, Medical Engineering and Physics, 36, 694-700
  • 29. Yosibash Z., Trabelsi N., Milgrom C., 2007, Reliable simulations of the human proximal femur by high-order finite element analysis validated by experimental observations, Journal of Biomechanics, 40, 16, 3688-3699
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-b4fff6b0-3c3b-41af-b799-f318e5fc24ab
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