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Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis

BACKGROUND: The ability of modern implant dentistry to achieve goals such as normal contour, function, comfort, esthetics, and health to totally or partially edentulous patients guaranteed it to be more effective and reliable method for the rehabilitation process of many challenging clinical situati...

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Autores principales: Hussein, Falah A., Salloomi, Kareem N., Abdulrahman, Besaran Y., Al-Zahawi, Abdulsalam R., Sabri, Laith A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wolters Kluwer - Medknow 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6474169/
https://www.ncbi.nlm.nih.gov/pubmed/31040877
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author Hussein, Falah A.
Salloomi, Kareem N.
Abdulrahman, Besaran Y.
Al-Zahawi, Abdulsalam R.
Sabri, Laith A.
author_facet Hussein, Falah A.
Salloomi, Kareem N.
Abdulrahman, Besaran Y.
Al-Zahawi, Abdulsalam R.
Sabri, Laith A.
author_sort Hussein, Falah A.
collection PubMed
description BACKGROUND: The ability of modern implant dentistry to achieve goals such as normal contour, function, comfort, esthetics, and health to totally or partially edentulous patients guaranteed it to be more effective and reliable method for the rehabilitation process of many challenging clinical situations. In regard to this, the current study evaluates the effect of changing implant shape design parameters on interface stress distribution within the mandible bone. MATERIALS AND METHODS: A numerical procedure based on finite element (FE) method was adopted to investigate the influence of using different body design and thread depth of the inserted implant on the final stress situation. For the purpose of evaluation, a three-dimensional realistic FE models of mandible bone and inserted implant were constructed and analyzed using a pack of engineering software (Solidworks, and ANSYS). Six different commercial implant models (cylindrical and tapered) with three different V-shaped thread depths (0.25 mm, 0.35 mm, and 0.45 mm) were designed to be used in this study. The suggested implants used in this study were threaded in two different locations of mandible bone; the anterior region (Type I model) and posterior region (Type II model). A vertical static load of 250 N was directly applied to the center of the suprastructure of the implant for each model. RESULTS: For both models, evaluations were achieved to figure out the stress distribution patterns and maximum equivalent von Mises. The results obtained after implementation of FE dental-implant models show that the highest stresses were located at the crestal cortical bone around the implant neck. In addition, the simulation study revealed that taper body implant had a higher peak value of von Mises stress than that of cylinder body implants in all types of bones. Moreover, a thread depth of 0.25 mm showed highest peak of maximum von Mises stresses for Type I and Type II models. CONCLUSION: The simulation results indicate that all models have the same von Mises stress distribution pattern and higher peak von Mises stresses of the cortical bone were seen in tapered implant body in contrast to the cylindrical body.
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spelling pubmed-64741692019-05-01 Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis Hussein, Falah A. Salloomi, Kareem N. Abdulrahman, Besaran Y. Al-Zahawi, Abdulsalam R. Sabri, Laith A. Dent Res J (Isfahan) Original Article BACKGROUND: The ability of modern implant dentistry to achieve goals such as normal contour, function, comfort, esthetics, and health to totally or partially edentulous patients guaranteed it to be more effective and reliable method for the rehabilitation process of many challenging clinical situations. In regard to this, the current study evaluates the effect of changing implant shape design parameters on interface stress distribution within the mandible bone. MATERIALS AND METHODS: A numerical procedure based on finite element (FE) method was adopted to investigate the influence of using different body design and thread depth of the inserted implant on the final stress situation. For the purpose of evaluation, a three-dimensional realistic FE models of mandible bone and inserted implant were constructed and analyzed using a pack of engineering software (Solidworks, and ANSYS). Six different commercial implant models (cylindrical and tapered) with three different V-shaped thread depths (0.25 mm, 0.35 mm, and 0.45 mm) were designed to be used in this study. The suggested implants used in this study were threaded in two different locations of mandible bone; the anterior region (Type I model) and posterior region (Type II model). A vertical static load of 250 N was directly applied to the center of the suprastructure of the implant for each model. RESULTS: For both models, evaluations were achieved to figure out the stress distribution patterns and maximum equivalent von Mises. The results obtained after implementation of FE dental-implant models show that the highest stresses were located at the crestal cortical bone around the implant neck. In addition, the simulation study revealed that taper body implant had a higher peak value of von Mises stress than that of cylinder body implants in all types of bones. Moreover, a thread depth of 0.25 mm showed highest peak of maximum von Mises stresses for Type I and Type II models. CONCLUSION: The simulation results indicate that all models have the same von Mises stress distribution pattern and higher peak von Mises stresses of the cortical bone were seen in tapered implant body in contrast to the cylindrical body. Wolters Kluwer - Medknow 2019 /pmc/articles/PMC6474169/ /pubmed/31040877 Text en Copyright: © 2019 Dental Research Journal http://creativecommons.org/licenses/by-nc-sa/4.0 This is an open access journal, and articles are distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as appropriate credit is given and the new creations are licensed under the identical terms.
spellingShingle Original Article
Hussein, Falah A.
Salloomi, Kareem N.
Abdulrahman, Besaran Y.
Al-Zahawi, Abdulsalam R.
Sabri, Laith A.
Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis
title Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis
title_full Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis
title_fullStr Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis
title_full_unstemmed Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis
title_short Effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: A finite element analysis
title_sort effect of thread depth and implant shape on stress distribution in anterior and posterior regions of mandible bone: a finite element analysis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6474169/
https://www.ncbi.nlm.nih.gov/pubmed/31040877
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