Mechanical design, analysis, and laboratory testing of a dental implant with axial flexibility similar to natural tooth with periodontal ligament

Author:

Pektaş Ömer12,Tönük Ergin134

Affiliation:

1. Department of Mechanical Engineering, Middle East Technical University, Ankara, Turkey

2. Genamer Technology Ltd., Ankara, Turkey

3. Graduate Program of Biomedical Engineering, Middle East Technical University, Ankara, Turkey

4. BIOMATEN – Center of Excellence in Biomaterials and Tissue Engineering, Middle East Technical University, Ankara, Turkey

Abstract

At the interface between the jawbone and the roots of natural teeth, a thin, elastic, shock-absorbing tissue, called the periodontal ligament, forms a cushion which provides certain flexibility under mechanical loading. The dental restorations supported by implants, however, involve comparatively rigid connections to the jawbone. This causes overloading of the implant while bearing functional loading together with neighboring natural teeth, which leads to high stresses within the implant system and in the jawbone. A dental implant, with resilient components in the upper structure (abutment) in order to mimic the mechanical behavior of the periodontal ligament in the axial direction, was designed, analyzed in silico, and produced for mechanical testing. The aims of the design were avoiding high levels of stress, loosening of the abutment connection screw, and soft tissue irritations. The finite element analysis of the designed implant revealed that the elastic abutment yielded a similar axial mobility with the natural tooth while keeping stress in the implant at safe levels. The in vitro mechanical testing of the prototype resulted in similar axial mobility predicted by the analysis and as that of a typical natural tooth. The abutment screw did not loosen under repeated loading and there was no static or fatigue failure.

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Medicine

Reference41 articles.

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2. Röhlig BG. The use of angulated implants in the maxillary tuberosity region. A 3-dimensional finite element analysis. Doctoral Thesis, The Philipp University of Marburg, Marburg, 2004.

3. Flexible (Polyactive®) versus rigid (hydroxyapatite) dental implants

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