By J. A. Beltrán-Fernández, L. H. Hernández-Gómez, G. Urriolagoitia-Calderón (auth.), Andreas Öchsner, Lucas F. M. da Silva, Holm Altenbach (eds.)
This assortment presents researchers and scientists with complex analyses and fabrics layout options in Biomaterials and offers mechanical reviews of organic constructions. In sixteen contributions renowned specialists current their examine on tension and pressure research, fabric homes, Fluid and fuel mechanics they usually exhibit comparable problems.
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Extra info for Analysis and Design of Biological Materials and Structures
Computational mechanics of the heart. J. Elast. 61, 113–141 (2000) Stress Distribution in Dental Implant with Elastomeric Stress Barrier Ali Merdji, Belabess Bachir Bouiadjra, Rajshree Mootanah, Boualem Serier, Tarik Achour and Noreddine Djebbar Abstract It is well known that the success of dental implants is heavily dependent on the initial stability and long-term osseointegration due to optimal stress distribution in the surrounding bones. This research describes a numerical study performed with the finite element method due to the commercial code, ABAQUS, of new dental implant system in order to know the effect of the elastomer material under an occlusal load on the equivalent von Mises interface stresses induced.
In a number of radiologic long-term studies, loaded implants showed typical bone loss around the implant neck. This agrees well with the results of the present finite element study, in which the highest stress levels occurred in this very area. The cervical bone resorption always occurs to accommodate the reformation of a ‘biological width’. Preservation of peri-implant bone height depends on the magnitude and concentration of stress transmitted to the bone by the implant. There appears to be an optimal level of stress at which bone resorption is balanced by apposition.
76, 633 (1996) 3. : A comparison of endosseous dental implant surfaces. J. Periodontol. 70, 1523 (1999) 4. : Finite element analysis of three designs of an implant-supported molar crown. J. Prosth. Dent. 92, 434 (2004) 5. : Biomechanical stress in bone surrounding an implant under simulated chewing. Clin. Oral. Implant. Res. 14, 97 (2003) 6. : Current evaluation of plastics in crown and bridge prosthesis. J. Prosth. Dent. 13, 743 (1963) 7. : Stimulating effect of implant loading on surrounding bone: comparison of three numerical models and validation by in vivo data.
Analysis and Design of Biological Materials and Structures by J. A. Beltrán-Fernández, L. H. Hernández-Gómez, G. Urriolagoitia-Calderón (auth.), Andreas Öchsner, Lucas F. M. da Silva, Holm Altenbach (eds.)