Dental Materials
Volume 25, Issue 5 , Pages 573-581 , May 2009

Dental implants press fit phenomena: Biomechanical analysis considering bone inelastic response

Received 11 June 2008 ,Revised 8 September 2008 ,Accepted 4 November 2008.

References 

  1. Le Béguec P, Sieber HP. Revision of loose femoral prosthesis. Paris: Springer; 2007;
  2. Sugiura T, Horiuchi K, Sugimura M, Tsutsumi S. Evaluation of threshold stress for bone resorption around screws based on in vivo strain measurement on miniplate. Journal of Musculoskeletal and Neuronal Interactions. 2000;1:165–170
  3. Natali AN, Pavan P, Ruggero AL. Analysis of bone–implant interaction phenomena by using a numerical approach. Clinical Oral Implants Research. 2006;17:67–74
  4. Natali AN, Gasparetto A, Carniel EL, Pavan P, Fabbro S. Interaction phenomena between oral implants and bone tissue in single and multiple implant frames under occlusal loads and misfit condition: a numerical approach. Journal of Biomedical Materials Research Part B: Applied Biomaterials. 2007;83B:332–339
  5. Natali AN, Carniel EL, Pavan P. Investigation of bone inelastic response in interaction phenomena with dental implants. Dental Materials. 2008;24:561–569
  6. Wu JC, Huang ZN, Zhao SF, Xu XJ. Stress distribution in press-fit orthodontic micro-implant bone interface. Shanghai Kou Qiang Yi Xue. 2000;15:619–622
  7. Van Eijden TMGJ. Biomechanics of the mandible. Critical Reviews in Oral Biology and Medicine. 2000;11:123–136
  8. Schwartz-Dabney CL, Dechow PC. Accuracy of elastic property measurement in mandibular cortical bone is improved by using cylindrical specimens. Journal of Biomechanical Engineering. 2002;124:714–723
  9. Schwartz-Dabney CL, Dechow PC. Variations in cortical material properties throughout the human dentate mandible. American Journal of Physical Anthropology. 2003;120:252–277
  10. Natali AN, Carniel EL, Pavan PG. Constitutive modelling of inelastic behaviour of cortical bone. Medical Engineering & Physics. 2008;30(7):905–912
  11. Iyo T, Maki Y, Sasaki N, Nakata M. Anisotropic viscoelastic properties of cortical bone. Journal of Biomechanics. 2004;37:1433–1437
  12. Cowin SC, He Q-C. Tensile and compressive stress yield criteria for cancellous bone. Journal of Biomechanics. 2005;38:141–144
  13. Natali AN, Viola MM. Computer tomography for virtual models in dental imaging. In:  Natali AN editors. Dental biomechanics. vol. 3:London: Taylor & Francis; 2003;p. 35–51
  14. Schwartz-Dabney CL, Dechow PC. Edentulation alters material properties of cortical bone in the human mandible. Journal of Dental Research. 2002;81:613–617
  15. Belytschko T, Liu WK, Moran B. Nonlinear finite elements for continua and structures. New York: John Wiley & Sons; 2000;
  16. Fritsch A, Hellmich C. Universal microstructural patterns in cortical and trabecular, extracellular and extravascular bone materials: micromechanics-based prediction of anisotropic elasticity. Journal of Theoretical Biology. 2007;244:597–620
  17. Dong XN, Guo XE. The dependence of transversely isotropic elasticity of human femoral cortical bone on porosity. Journal of Biomechanics. 2004;3:1281–1287
  18. Cowin SC. Bone mechanics handbook. Boca Raton: CRC Press; 2001;
  19. Chang WCW, Christensen TM, Pinilla TR, Keaveny TM. Isotropy of uniaxial yield strains for bovine trabecular bone. Journal of Orthopaedic Research. 1999;17:582–585
  20. Keaveny TM, Morgan EF, Niebur GL, Yeh OC. Biomechanics of trabecular bone. Annual Review of Biomedical Engineering. 2001;3:307–333
  21. Lubliner J. Plasticity theory. New York: Macmillan Publishing Company; 1990;
  22. Zienkiewicz OC, Taylor RL. The finite element method. Oxford: Butterworth Heinemann; 2000;
  23. Khaleel MA, Zbib HM, Nyberg EA. Constitutive modeling of deformation and damage in superplastic materials. International Journal of Plasticity. 2001;17:277–296
  24. Guang Z, Keshi Z, Lu F, Chunhui W. Numerical simulation of non-planar plastic anisotropy of cold rolling polycrystalline materials. Acta Mechanica Solida Sinica. 2005;18:13–20
  25. Bayraktar HH, Morgan EF, Niebur GL, Morris GE, Wong EK, Keaveny TM. Comparison of the elastic and yield properties of human femoral trabecular and cortical bone tissue. Journal of Biomechanics. 2004;37:27–35
  26. Mercer C, He MY, Wang R, Evans AG. Mechanisms governing the inelastic deformation of cortical bone and application to trabecular bone. Acta Biomaterialia. 2006;2:59–68
  27. O’Mahony AM, Williams JL, Katz JO, Spencer P. Anisotropic elastic properties of cancellous bone from a human edentulous mandible. Clinical Oral Implant Research. 2000;11:415–421
  28. Currey J. Tensile yield in compact bone is determined by strain, post yield behavior by mineral content. Journal of Biomechanics. 2004;37:549–556
  29. Melnis AÉ , Knets IV. Effect of the rate of deformation on the mechanical properties of compact bone tissue. Mechanics of Composite Materials. 1982;18:358–363
  30. Wong AS, New AMR, Ritchie A, Taylor M. Influence of an interference-fit on the strain distribution in the implanted proximal femur. In: Proceedings of the post graduate conference in engineering materials. 2001;p. 49–50
  31. Moon HS, Won YY, Kim KD, Ruprecht A, Kim HJ, Kook HK, et al. The three-dimensional microstructure of the trabecular bone in the mandible. Surgical and Radiology Anatomy. 2004;26:466–473

PII: S0109-5641(08)00262-5

doi: 10.1016/j.dental.2008.11.002

Dental Materials
Volume 25, Issue 5 , Pages 573-581 , May 2009