Non-linear 3D Evaluation of Different Oral Implant-Abutment Connections

Author:

Streckbein P.1,Streckbein R.G.2,Wilbrand J.F.1,Malik C.Y.1,Schaaf H.1,Howaldt H.P.1,Flach M.3

Affiliation:

1. Department for Cranio-Maxillo-Facial and Plastic Surgery, University Hospital Giessen, Klinikstr. 33, 35385 Giessen, Germany

2. Institute for Postgraduate Education in Dental Implantology, Auf dem Schafsberg, 65549 Limburg, Germany

3. University of Applied Sciences Koblenz, Konrad-Zuse-Str. 1, 56075 Koblenz, Germany

Abstract

Micro-gaps and osseous overload in the implant-abutment connection are the most common causes of peri-implant bone resorption and implant failure. These undesirable events can be visualized on standardized three-dimensional finite element models and by radiographic methods. The present study investigated the influence of 7 available implant systems (Ankylos, Astra, Bego, Brånemark, Camlog, Straumann, and Xive) with different implant-abutment connections on bone overload and the appearance of micro-gaps in vitro. The individual geometries of the implants were transferred to three-dimensional finite element models. In a non-linear analysis considering the pre-loading of the occlusion screw, friction between the implant and abutment, the influence of the cone angle on bone strain, and the appearance of micro-gaps were determined. Increased bone strains were correlated with small (< 15°) cone angles. Conical implant-abutment connections efficiently avoided micro-gaps but had a negative effect on peri-implant bone strain. Bone strain was reduced in implants with greater wall thickness (Ankylos) or a smaller cone angle (Bego). The results of our in silico study provide a solid basis for the reduction of peri-implant bone strain and micro-gaps in the implant-abutment connection to improve long-term stability.

Publisher

SAGE Publications

Subject

General Dentistry

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