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 offers 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 rigidity and pressure research, fabric houses, Fluid and fuel mechanics they usually convey comparable problems.
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Wall stress distribution on three-dimensionally reconstructed models of human abdominal aortic aneurysm. J. Vascul. Surg. 31, 760–769 (2000) 8. : Mechanical wall stress in abdominal aortic aneurysm: Influence of diameter and asymmetry. J. Vasc. Surg. 27, 632–639 (1998) 9. : Biomechanics of abdominal aortic aneurysm. J. Biomech. 40, 1887–1902 (2007) 10. : In vivo characterization of the aortic wall stress–strain relationship. Ultrason. 50, 654–665 (2010) 11. : Mouse models of abdominal aortic aneurysms.
6 Discussion The aim of this study was to provide an analysis between two different geometric configurations of implant systems, to find the pure effect upon the bone stresses of prosthesis materials, to know the influence of the elastomer material on the load transfer to the implant and bone and to compare their biomechanical behavior. For this reason, it was assumed that all the parameters of both models were identical except the prosthetic design. In both models, the extreme stresses in the mandibular bone occur in the layer of cortical bone adjacent to the neck of the implants.
B. Bouiadjra Department of Mechanical Engineering, College of Engineering, King Saud University, Riyadh, Saudi Arabia R. uk A. Öchsner et al. 1007/978-3-642-22131-6_4, Ó Springer-Verlag Berlin Heidelberg 2012 43 44 A. Merdji et al. These stresses were compared with the ones provoked by the standardized implant. The von Mises stress distribution indicated that the stress was maximal around the top of the implant with varying intensities in the different loading cases. The stress was highest in the cortical bone at the neck of the implant and lowest in the cancellous bone.
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.)