菜单
  

    Conclusion
    Within the limitations of the study it was seen that as the diameter of the attachment increases there was a resultant increase in the magnitude of stress that is transferred to the cortical bone. The greatest stress concentrations were seen at the crest of the cortical bone in all the models irre¬spective of the loading conditions. It was also deduced that the small diameter attachment is the better attachments to be used for implant supported-overdenture in terms of minimizing the stresses to the bone.
    References
    1.    Feine JS, Carlsson GE, Awad MA, Chehade A, Duncan WJ, Gizani S et al (2002) The McGill consensus statement on over-dentures. Mandibular two-implant overdentures as first choice standard of care for edentulous patients. Gerodontology 19(1):
    34
    2.    Mericske-Stern R (1998) Treatment outcome with implant sup-ported overdentures: clinical consideration. J Prosthet Dent 79: 66-73
    3.    Celik G, Uludag B (2007) Photoelastic stress analysis of various retention mechanisms on 3-implant-retained mandibular over-dentures. J Prosthet Dent 97(4):229-235
    4.    Meijer HJA, Starmans FJ, Steen WH, Bosman FA (1996) Loading conditions of endosseous implants in an edentulous human mandible. A three-dimensional finite element study. J Oral Rehabil 23:757-763
    5.    Misch CE (2005) Dental implant prosthetics. Mosby, Inc
    6.    Cruz M, Wassall T, Toledo EM, Barra L, Lemonge A (2003) Three-dimensional finite element stress analysis of a cuneiform- geometry implant. Int J Oral Maxillofac Implants 18(5):675-684
    7.    Mastero product catalog: BioHorizon (2004)
    8.    Biesaga R (2004) Dyna magnet manual. Dyna Magnet Inc
    9.    Fujimoto T, Niimi A, Murakami I, Ueda M (1998) Use of new magnetic attachments for implant-supported overdentures. J Oral Implantol 24(3):147-151
    10.    Geng JP, Tan KBC, Liu GR (2001) Application of finite element analysis in implant dentistry: a review of literature. J Prosthet Dent 85:585-598
    11.    Mericske-Stern R, Overdentures ZG (1993) An alternative implant methodology for edentulous patients. Int J Prosthodont
    6:203-208
    12.    Koolstra JH, Van eijden TMGJ, Naeije M, Weijs WA (1988) A three-dimensional model of the human masticatory system pre-dieting maximum possible bite forces. J Biomech 21:563-576
    13.    Van Kampen FMC, Van Der Bilt A, Cune MS, Bosman F (2002) The influence of various attachment types in mandibular implant retained overdentures on maximum bite force and EMG. J Dent Res 81(3):170-173
    14.    Eskitascioglu G, Usumez A, Sevimay M, Soytian E (2004) The influence of occlusal loading location on stresses transferred to implant supported prosthesis and supporting bone: a three-dimensional finite element analysis. J Prosthet Dent 91:144-150
    15.    Kenny R, Richards MW (1998) Photoelastic stress patterns pro-duced by implant retained overdentures. J Prosthet Dent 80: 559-564
    16.    Tokuhisa M, Matsushita Y, Koyano K (2003) In vitro study of mandibular overdenture retained with ball, magnet or bar attachment: comparison of load transfer and denture stability. Int J Prosthdont 16:128-134
    17.    Rutkunas V, Mizutani H (2004) Retentive and stabilizing prop-erties of stud and magnetic attachments retaining mandibular overdenture. an in vitro study. Stomatol Baltic Dent Maxillofac J 6:85-90
    18.    Preiskel H (1996) Overdentures made easy: A guide to implant and tooth supported prosthesis. Quentessence, London
    19.    Wiemeyer Agar JR, Kazemi RB (2001) Orientation of retentive matrices on spherical attachments independent of implant paral- lelisim. J Prostho Dent 86(4):434-437
    20.    Riley MA, Walmsley AD, Harris IR (2001) Magnets in prosthetic dentistry. J Prosthet Dent 86(2):137-142
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