| Literature DB >> 27995137 |
Esteban Pérez-Pevida1, Aritza Brizuela-Velasco1, David Chávarri-Prado2, Antonio Jiménez-Garrudo3, Fernando Sánchez-Lasheras4, Eneko Solaberrieta-Méndez5, Markel Diéguez-Pereira6, Felipe J Fernández-González7, Borja Dehesa-Ibarra1, Francesca Monticelli1.
Abstract
The objective of the present study is to evaluate how the elastic properties of the fabrication material of dental implants influence peri-implant bone load transfer in terms of the magnitude and distribution of stress and deformation. A three-dimensional (3D) finite element analysis was performed; the model used was a section of mandibular bone with a single implant containing a cemented ceramic-metal crown on a titanium abutment. The following three alloys were compared: rigid (Y-TZP), conventional (Ti-6Al-4V), and hyperelastic (Ti-Nb-Zr). A 150-N static load was tested on the central fossa at 6° relative to the axial axis of the implant. The results showed no differences in the distribution of stress and deformation of the bone for any of the three types of alloys studied, mainly being concentrated at the peri-implant cortical layer. However, there were differences found in the magnitude of the stress transferred to the supporting bone, with the most rigid alloy (Y-TZP) transferring the least stress and deformation to cortical bone. We conclude that there is an effect of the fabrication material of dental implants on the magnitude of the stress and deformation transferred to peri-implant bone.Entities:
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Year: 2016 PMID: 27995137 PMCID: PMC5138439 DOI: 10.1155/2016/1850401
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 1Finite element model used.
Mechanical properties of materials and fixtures.
| Material | Component | Young's modulus (GPa) | Poisson ratio | Reference |
|---|---|---|---|---|
| Cortical bone | 15 | 0.30 | Geng et al. [ | |
| Spongy bone | 1 | 0.25 | Geng et al. [ | |
| Y-TZP | Implant | 210 | 0.31 | Piconi and Maccauro [ |
| Ti-6Al-4V alloy | Abutment and screw | 107.2 | 0.30 | Álvarez et al. [ |
| Implant | 110 | 0.35 | Álvarez et al. [ | |
| Ti-Nb-Zr alloy | Implant | 71 | 0.32 | López et al. [ |
| Cr-Co alloy | Crown interior | 218 | 0.33 | Álvarez et al. [ |
| Feldspathic porcelain | Crown surface | 65 | 0.25 | Bona et al. [ |
Figure 2Load conditions used in the finite element analysis.
Maximum and minimum von Mises stresses (MPa) in cortical and trabecular bones and implants for all fabrication materials.
| Fabrication material | von Mises stress (MPa) | |||
|---|---|---|---|---|
| Cortical | Trabecular | Implant | ||
| Y-TZP | Min | 0.1434 | 0.03851 | 0.953 |
| Max | 16.206 | 2.142 | 113.22 | |
| Ti-6Al-4V | Min | 0.14238 | 0.03779 | 0.748 |
| Max | 16.945 | 2.038 | 91.23 | |
| Ti-Nb-Zr | Min | 0.1416 | 0.03716 | 0.638 |
| Max | 17.271 | 1.948 | 76.673 | |
Maximum and minimum deformations (μm) in cortical and trabecular bone and in implants for the different fabrication materials.
| Fabrication materials | Deformation ( | |||
|---|---|---|---|---|
| Cortical | Trabecular | Implant | ||
| Y-TZP | Min | 0 | 0 | 45.711 |
| Max | 59.971 | 58.745 | 73.093 | |
| Ti-6Al-4V | Min | 0 | 0 | 45.006 |
| Max | 62.516 | 60.55 | 83.145 | |
| Ti-Nb-Zr | Min | 0 | 0 | 44.492 |
| Max | 64.999 | 62.441 | 93.979 | |
Figure 3Distribution of the stress in the entire model (a), cortical bone (b), trabecular bone (c), and implant (d) for the Y-TZP material.
Figure 4Distribution of the stress in the entire model (a), cortical bone (b), trabecular bone (c), and implant (d) for the Ti-Nb-Zr material.