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Effects of abutment screw preload and preload simulation techniques on dental implant lifetime

BACKGROUND. This study aimed to investigate how the predicted implant fatigue lifetime is affected by the loss of connector screw preload and the finite element analysis method used to simulate preload. METHODS. A dental implant assembly (DI1, Biomet-3i external hex; Zimmer Biomet) was scanned using...

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Autores principales: Satpathy, Megha, Jose, Rose M., Duan, Yuanyuan, Griggs, Jason A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9873498/
https://www.ncbi.nlm.nih.gov/pubmed/36704641
http://dx.doi.org/10.1016/j.jfscie.2022.100010
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author Satpathy, Megha
Jose, Rose M.
Duan, Yuanyuan
Griggs, Jason A.
author_facet Satpathy, Megha
Jose, Rose M.
Duan, Yuanyuan
Griggs, Jason A.
author_sort Satpathy, Megha
collection PubMed
description BACKGROUND. This study aimed to investigate how the predicted implant fatigue lifetime is affected by the loss of connector screw preload and the finite element analysis method used to simulate preload. METHODS. A dental implant assembly (DI1, Biomet-3i external hex; Zimmer Biomet) was scanned using microcomputed tomography and measured using Mimics software (Materialise) and an optical microscope. Digital replicas were constructed using SolidWorks software (Dassault Systèmes). The material properties were assigned in Abaqus (Dassault Systèmes). An external load was applied at 30° off-axial loading. Eight levels of connector screw preload (range, 0–32 Ncm) were simulated for DI1. This assembly and an additional model (DI2) having a longer and narrower screw were compared regarding their fatigue limits (using fe-safe software [Dassault Systèmes]) for 2 preloading methods: (1) adding preload torque or (2) adding bolt axial tension. RESULTS. The maximum von Mises stresses of DI1 (on the connector screw threads) with and without preload were 439.90 MPa and 587.90 MPa. The predicted fatigue limit was the same for preloads from 100% through 80% of the manufacturer(’)s recommendation and dropped precipitously between 80% and 70% preload. Adding a preload torque on the screw resulted in a more uniform stress distribution on the screw compared with bolt axial tension, especially for DI2, which had a longer and narrower screw than DI1. CONCLUSIONS. A substantial loss of preload can be accommodated without compromising the fatigue resistance of this dental implant. Computer models should be constructed using torque instead of a bolt axial tension.
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spelling pubmed-98734982023-01-25 Effects of abutment screw preload and preload simulation techniques on dental implant lifetime Satpathy, Megha Jose, Rose M. Duan, Yuanyuan Griggs, Jason A. JADA Found Sci Article BACKGROUND. This study aimed to investigate how the predicted implant fatigue lifetime is affected by the loss of connector screw preload and the finite element analysis method used to simulate preload. METHODS. A dental implant assembly (DI1, Biomet-3i external hex; Zimmer Biomet) was scanned using microcomputed tomography and measured using Mimics software (Materialise) and an optical microscope. Digital replicas were constructed using SolidWorks software (Dassault Systèmes). The material properties were assigned in Abaqus (Dassault Systèmes). An external load was applied at 30° off-axial loading. Eight levels of connector screw preload (range, 0–32 Ncm) were simulated for DI1. This assembly and an additional model (DI2) having a longer and narrower screw were compared regarding their fatigue limits (using fe-safe software [Dassault Systèmes]) for 2 preloading methods: (1) adding preload torque or (2) adding bolt axial tension. RESULTS. The maximum von Mises stresses of DI1 (on the connector screw threads) with and without preload were 439.90 MPa and 587.90 MPa. The predicted fatigue limit was the same for preloads from 100% through 80% of the manufacturer(’)s recommendation and dropped precipitously between 80% and 70% preload. Adding a preload torque on the screw resulted in a more uniform stress distribution on the screw compared with bolt axial tension, especially for DI2, which had a longer and narrower screw than DI1. CONCLUSIONS. A substantial loss of preload can be accommodated without compromising the fatigue resistance of this dental implant. Computer models should be constructed using torque instead of a bolt axial tension. 2022 2022-05-20 /pmc/articles/PMC9873498/ /pubmed/36704641 http://dx.doi.org/10.1016/j.jfscie.2022.100010 Text en https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Satpathy, Megha
Jose, Rose M.
Duan, Yuanyuan
Griggs, Jason A.
Effects of abutment screw preload and preload simulation techniques on dental implant lifetime
title Effects of abutment screw preload and preload simulation techniques on dental implant lifetime
title_full Effects of abutment screw preload and preload simulation techniques on dental implant lifetime
title_fullStr Effects of abutment screw preload and preload simulation techniques on dental implant lifetime
title_full_unstemmed Effects of abutment screw preload and preload simulation techniques on dental implant lifetime
title_short Effects of abutment screw preload and preload simulation techniques on dental implant lifetime
title_sort effects of abutment screw preload and preload simulation techniques on dental implant lifetime
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9873498/
https://www.ncbi.nlm.nih.gov/pubmed/36704641
http://dx.doi.org/10.1016/j.jfscie.2022.100010
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