Literature DB >> 22372756

Regular and platform switching: bone stress analysis varying implant type.

Nália Cecília Gurgel-Juarez1, Erika Oliveira de Almeida, Eduardo Passos Rocha, Amílcar Chagas Freitas, Rodolfo Bruniera Anchieta, Luis Carlos Merçon de Vargas, Sidney Kina, Fabiana Mantovani Gomes França.   

Abstract

PURPOSE: This study aimed to evaluate stress distribution on peri-implant bone simulating the influence of platform switching in external and internal hexagon implants using three-dimensional finite element analysis.
MATERIALS AND METHODS: Four mathematical models of a central incisor supported by an implant were created: External Regular model (ER) with 5.0 mm × 11.5 mm external hexagon implant and 5.0 mm abutment (0% abutment shifting), Internal Regular model (IR) with 4.5 mm × 11.5 mm internal hexagon implant and 4.5 mm abutment (0% abutment shifting), External Switching model (ES) with 5.0 mm × 11.5 mm external hexagon implant and 4.1 mm abutment (18% abutment shifting), and Internal Switching model (IS) with 4.5 mm × 11.5 mm internal hexagon implant and 3.8 mm abutment (15% abutment shifting). The models were created by SolidWorks software. The numerical analysis was performed using ANSYS Workbench. Oblique forces (100 N) were applied to the palatal surface of the central incisor. The maximum (σ(max)) and minimum (σ(min)) principal stress, equivalent von Mises stress (σ(vM)), and maximum principal elastic strain (ε(max)) values were evaluated for the cortical and trabecular bone.
RESULTS: For cortical bone, the highest stress values (σ(max) and σ(vm) ) (MPa) were observed in IR (87.4 and 82.3), followed by IS (83.3 and 72.4), ER (82 and 65.1), and ES (56.7 and 51.6). For ε(max), IR showed the highest stress (5.46e-003), followed by IS (5.23e-003), ER (5.22e-003), and ES (3.67e-003). For the trabecular bone, the highest stress values (σ(max)) (MPa) were observed in ER (12.5), followed by IS (12), ES (11.9), and IR (4.95). For σ(vM), the highest stress values (MPa) were observed in IS (9.65), followed by ER (9.3), ES (8.61), and IR (5.62). For ε(max) , ER showed the highest stress (5.5e-003), followed by ES (5.43e-003), IS (3.75e-003), and IR (3.15e-003).
CONCLUSION: The influence of platform switching was more evident for cortical bone than for trabecular bone, mainly for the external hexagon implants. In addition, the external hexagon implants showed less stress concentration in the regular and switching platforms in comparison to the internal hexagon implants.
© 2012 by the American College of Prosthodontists.

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Year:  2012        PMID: 22372756     DOI: 10.1111/j.1532-849X.2011.00801.x

Source DB:  PubMed          Journal:  J Prosthodont        ISSN: 1059-941X            Impact factor:   2.752


  3 in total

1.  Stress distribution in the transitional peri-implant bone in a single implant-supported prosthesis with platform-switching under different angulated loads.

Authors:  Ángel Álvarez-Arenal; Luis Segura-Mori; Ignacio Gonzalez-Gonzalez; Hector DeLlanos-Lanchares; Fernando Sanchez-Lasheras; Joseba Ellacuria-Echevarria
Journal:  Odontology       Date:  2016-03-04       Impact factor: 2.634

2.  Case presentation of two patients using diagonal platform-switched double implants for maxillary single-first-molar replacement as the alternative of a single-tooth implant.

Authors:  Yasunori Hotta; Koji Ito; Shinichi Komatsu; Takashi Saito
Journal:  Int J Implant Dent       Date:  2015-11-12

3.  Deformation of the Internal Connection of Narrow Implants after Insertion in Dense Bone: An in Vitro Study.

Authors:  Rafael Delgado-Ruiz; Ana Nicolas Silvente; Georgios Romanos
Journal:  Materials (Basel)       Date:  2019-06-06       Impact factor: 3.623

  3 in total

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