Literature DB >> 29090979

Optimization of the Conical Angle Design in Conical Implant-Abutment Connections: A Pilot Study Based on the Finite Element Method.

Kuang-Ta Yao1, Chen-Sheng Chen2, Cheng-Kung Cheng3, Hsu-Wei Fang4, Chang-Hung Huang5, Hung-Chan Kao3, Ming-Lun Hsu6.   

Abstract

Conical implant-abutment connections are popular for their excellent connection stability, which is attributable to frictional resistance in the connection. However, conical angles, the inherent design parameter of conical connections, exert opposing effects on 2 influencing factors of the connection stability: frictional resistance and abutment rigidity. This pilot study employed an optimization approach through the finite element method to obtain an optimal conical angle for the highest connection stability in an Ankylos-based conical connection system. A nonlinear 3-dimensional finite element parametric model was developed according to the geometry of the Ankylos system (conical half angle = 5.7°) by using the ANSYS 11.0 software. Optimization algorithms were conducted to obtain the optimal conical half angle and achieve the minimal value of maximum von Mises stress in the abutment, which represents the highest connection stability. The optimal conical half angle obtained was 10.1°. Compared with the original design (5.7°), the optimal design demonstrated an increased rigidity of abutment (36.4%) and implant (25.5%), a decreased microgap at the implant-abutment interface (62.3%), a decreased contact pressure (37.9%) with a more uniform stress distribution in the connection, and a decreased stress in the cortical bone (4.5%). In conclusion, the methodology of design optimization to determine the optimal conical angle of the Ankylos-based system is feasible. Because of the heterogeneity of different systems, more studies should be conducted to define the optimal conical angle in various conical connection designs.

Entities:  

Keywords:  Ankylos implant system; abutment fracture; conical angle; conical implant–abutment connection; design optimization; nonlinear finite element analysis

Mesh:

Year:  2017        PMID: 29090979     DOI: 10.1563/aaid-joi-D-17-00149

Source DB:  PubMed          Journal:  J Oral Implantol        ISSN: 0160-6972            Impact factor:   1.779


  3 in total

1.  A Finite Element Stress Analysis of a Concical Triangular Connection in Implants: A New Proposal.

Authors:  Romy Angeles Maslucan; John Alexis Dominguez
Journal:  Materials (Basel)       Date:  2022-05-20       Impact factor: 3.748

2.  Mechanical Pull-Out Test of a New Hybrid Fixture-Abutment Connection: An In Vitro Study.

Authors:  Gianmaria D'Addazio; Bruna Sinjari; Lorenzo Arcuri; Beatrice Femminella; Giovanna Murmura; Manlio Santilli; Sergio Caputi
Journal:  Materials (Basel)       Date:  2021-03-22       Impact factor: 3.623

3.  Rotational tolerances of a titanium abutment in the as-received condition and after screw tightening in a conical implant connection.

Authors:  Rosario Prisco; Giuseppe Troiano; Luigi Laino; Khrystyna Zhurakivska
Journal:  J Adv Prosthodont       Date:  2021-12-22       Impact factor: 1.904

  3 in total

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