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Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis

Purpose: To analyze the stress distribution and the direction of force in external hexagonal implant with crown in three different angulations. Materials and Methods: A total of 60 samples of geometric models were used to analyze von Mises stress and direction of force with 0-, 5-, and 10-degree lin...

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Autores principales: Bandela, Vinod, Basany, Ram, Nagarajappa, Anil Kumar, Basha, Sakeenabi, Kanaparthi, Saraswathi, Ganji, Kiran Kumar, Patil, Santosh, Gudipaneni, Ravi Kumar, Mohammed, Ghazi Sghaireen, Alam, Mohammad Khursheed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8508490/
https://www.ncbi.nlm.nih.gov/pubmed/34639568
http://dx.doi.org/10.3390/ijerph181910266
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author Bandela, Vinod
Basany, Ram
Nagarajappa, Anil Kumar
Basha, Sakeenabi
Kanaparthi, Saraswathi
Ganji, Kiran Kumar
Patil, Santosh
Gudipaneni, Ravi Kumar
Mohammed, Ghazi Sghaireen
Alam, Mohammad Khursheed
author_facet Bandela, Vinod
Basany, Ram
Nagarajappa, Anil Kumar
Basha, Sakeenabi
Kanaparthi, Saraswathi
Ganji, Kiran Kumar
Patil, Santosh
Gudipaneni, Ravi Kumar
Mohammed, Ghazi Sghaireen
Alam, Mohammad Khursheed
author_sort Bandela, Vinod
collection PubMed
description Purpose: To analyze the stress distribution and the direction of force in external hexagonal implant with crown in three different angulations. Materials and Methods: A total of 60 samples of geometric models were used to analyze von Mises stress and direction of force with 0-, 5-, and 10-degree lingual tilt. Von Mises stress and force distribution were evaluated at nodes of hard bone, and finite element analysis was performed using ANSYS 12.1 software. For calculating stress distribution and force, we categorized and labeled the groups as Implant A1, Implant A2, and Implant A3, and Implant B1, Implant B2, and Implant B3 with 0-, 5-, and 10-degree lingual inclinations, respectively. Inter- and intra-group comparisons were performed using ANOVA test. A p-value of ≤0.05 was considered statistically significant. Results: In all the three models, overall maximum stress was found in implant model A3 on the implant surface (86.61), and minimum was found on model A1 in hard bone (26.21). In all the three models, the direction of force along three planes was maximum in DX (0.01025) and minimum along DZ (0.002) direction with model B1. Conclusion: Maximum von Mises stress and the direction of force in axial direction was found at the maximum with the implant of 10 degrees angulation. Thus, it was evident that tilting of an implant influences the stress concentration and force in external hex implants.
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spelling pubmed-85084902021-10-13 Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis Bandela, Vinod Basany, Ram Nagarajappa, Anil Kumar Basha, Sakeenabi Kanaparthi, Saraswathi Ganji, Kiran Kumar Patil, Santosh Gudipaneni, Ravi Kumar Mohammed, Ghazi Sghaireen Alam, Mohammad Khursheed Int J Environ Res Public Health Article Purpose: To analyze the stress distribution and the direction of force in external hexagonal implant with crown in three different angulations. Materials and Methods: A total of 60 samples of geometric models were used to analyze von Mises stress and direction of force with 0-, 5-, and 10-degree lingual tilt. Von Mises stress and force distribution were evaluated at nodes of hard bone, and finite element analysis was performed using ANSYS 12.1 software. For calculating stress distribution and force, we categorized and labeled the groups as Implant A1, Implant A2, and Implant A3, and Implant B1, Implant B2, and Implant B3 with 0-, 5-, and 10-degree lingual inclinations, respectively. Inter- and intra-group comparisons were performed using ANOVA test. A p-value of ≤0.05 was considered statistically significant. Results: In all the three models, overall maximum stress was found in implant model A3 on the implant surface (86.61), and minimum was found on model A1 in hard bone (26.21). In all the three models, the direction of force along three planes was maximum in DX (0.01025) and minimum along DZ (0.002) direction with model B1. Conclusion: Maximum von Mises stress and the direction of force in axial direction was found at the maximum with the implant of 10 degrees angulation. Thus, it was evident that tilting of an implant influences the stress concentration and force in external hex implants. MDPI 2021-09-29 /pmc/articles/PMC8508490/ /pubmed/34639568 http://dx.doi.org/10.3390/ijerph181910266 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bandela, Vinod
Basany, Ram
Nagarajappa, Anil Kumar
Basha, Sakeenabi
Kanaparthi, Saraswathi
Ganji, Kiran Kumar
Patil, Santosh
Gudipaneni, Ravi Kumar
Mohammed, Ghazi Sghaireen
Alam, Mohammad Khursheed
Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis
title Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis
title_full Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis
title_fullStr Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis
title_full_unstemmed Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis
title_short Evaluation of Stress Distribution and Force in External Hexagonal Implant: A 3-D Finite Element Analysis
title_sort evaluation of stress distribution and force in external hexagonal implant: a 3-d finite element analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8508490/
https://www.ncbi.nlm.nih.gov/pubmed/34639568
http://dx.doi.org/10.3390/ijerph181910266
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