Stress Distribution in Single Dental Implant System: Three-Dimensional Finite Element Analysis Based on an In Vitro Experimental Model

被引:24
作者
Edwards Rezende, Carlos Eduardo [1 ]
Chase-Diaz, Melody [2 ]
Costa, Max Doria [1 ]
Albarracin, Max Laurent [1 ]
Paschoeto, Gabriela [3 ]
Capello Sousa, Edson Antonio [3 ]
Rubo, Jose Henrique [1 ]
Sanches Borges, Ana Flavia [2 ]
机构
[1] Univ Sao Paulo, Bauru Sch Dent, Dept Prosthodont, BR-05508 Sao Paulo, Brazil
[2] Univ Sao Paulo, Bauru Sch Dent, Dept Operat Dent Endodont & Dent Mat, BR-05508 Sao Paulo, Brazil
[3] Sao Paulo State Univ, Sch Engn, Dept Mech Engn, Sao Paulo, Brazil
关键词
Dental implants; dental prostheses; finite element analysis; STRAIN-GAUGE MEASUREMENTS; EXPERIMENTAL POLYURETHANE MODEL; SUPPORTED PROSTHESIS; VALIDATION; BONE; FRAMEWORK; BIOMECHANICS; ABUTMENTS; TESTS;
D O I
10.1097/SCS.0000000000001977
中图分类号
R61 [外科手术学];
学科分类号
摘要
This study aimed to analyze the stress distribution in single implant system and to evaluate the compatibility of an in vitro model with finite element (FE) model. The in vitro model consisted of Branemark implant; multiunit set abutment of 5mm height; metal-ceramic screw-retained crown, and polyurethane simulating the bone. Deformations were recorded in the peri-implant region in the mesial and distal aspects, after an axial 300N load application at the center of the occlusal aspect of the crown, using strain gauges. This in vitro model was scanned with micro CT to design a three-dimensional FE model and the strains in the peri-implant bone region were registered to check the compatibility between both models. The FE model was used to evaluate stress distribution in different parts of the system. The values obtained from the in vitro model (20-587 epsilon) and the finite element analysis (81-588 epsilon) showed agreement among them. The highest stresses because of axial and oblique load, respectively were 5.83 and 40MPa for the cortical bone, 55 and 1200MPa for the implant, and 80 and 470MPa for the abutment screw. The FE method proved to be effective for evaluating the deformation around single implant. Oblique loads lead to higher stress concentrations.
引用
收藏
页码:2196 / 2200
页数:5
相关论文
共 32 条
[1]  
Akça K, 2002, INT J PROSTHODONT, V15, P115
[2]  
Akça K, 2008, INT J PERIODONT REST, V28, P391
[3]   Finite Element Analyses of Two Antirotational Designs of Implant Fixtures [J].
Akour, Salih N. ;
Fayyad, Mohammed A. ;
Nayfeh, Jamal F. .
IMPLANT DENTISTRY, 2005, 14 (01) :77-81
[4]   Development of a three-dimensional finite element model of a human mandible containing endosseous dental implants. I. Mathematical validation and experimental verification [J].
Al-Sukhun, Jehad ;
Kelleway, John ;
Helenius, Miia .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2007, 80A (01) :234-246
[5]   Influence of abutment material on the fracture strength and failure modes of abutment-fixture assemblies when loaded in a bio-faithful simulation [J].
Apicella, Davide ;
Veltri, Mario ;
Balleri, Piero ;
Apicella, Antonio ;
Ferrari, Marco .
CLINICAL ORAL IMPLANTS RESEARCH, 2011, 22 (02) :182-188
[6]   Effect of framework material and vertical misfit on stress distribution in implant-supported partial prosthesis under load application: 3-D finite element analysis [J].
Bacchi, Atais ;
Xediek Consani, Rafael Leonardo ;
Mesquita, Marcelo Ferraz ;
Fernandes dos Santos, Mateus Bertolini .
ACTA ODONTOLOGICA SCANDINAVICA, 2013, 71 (05) :1243-1249
[7]   Biomechanical Evaluation of Subcrestal Placement of Dental Implants: In Vitro and Numerical Analyses [J].
Chu, Chun-Ming ;
Hsu, Jui-Ting ;
Fuh, Lih-Jyh ;
Huang, Heng-Li .
JOURNAL OF PERIODONTOLOGY, 2011, 82 (02) :302-310
[8]  
Eser A, 2009, INT J ORAL MAX IMPL, V24, P439
[9]  
Frost H., 1960, HENRY FORD HOSP MEDI, V8, P25
[10]  
Frost HM., 1989, Structure, Function and Adaption of Compact Bone, P179