Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research

Background. This study aimed to evaluate and analyze the distribution of stresses on the palatal micro-implants and the cortical bone at the micro-implant site with optimal orthodontic retraction force in lingual orthodontics. Methods. ANSYS 12.1 software was used to construct the finite element mod...

Full description

Bibliographic Details
Main Authors: Tarulatha Revanappa Shyagali, Dhaval Aghera
Format: Article
Language:English
Published: Tabriz University of Medical Sciences 2019-11-01
Series:Journal of Dental Research, Dental Clinics, Dental Prospects
Subjects:
Online Access:https://joddd.tbzmed.ac.ir/PDF/joddd-25214
id doaj-80c9d475bc4b4c36918fbc1f2e3c1e25
record_format Article
spelling doaj-80c9d475bc4b4c36918fbc1f2e3c1e252020-11-25T03:35:25ZengTabriz University of Medical SciencesJournal of Dental Research, Dental Clinics, Dental Prospects2008-210X2008-21182019-11-0113319219910.15171/joddd.2019.030joddd-25214Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original researchTarulatha Revanappa Shyagali0Dhaval Aghera1Department of Orthodontics and Dentofacial Orthopedics, Hitkarini Dental College and Hospital, Jabalpur, IndiaPrivate practitioner, Rajkot, IndiaBackground. This study aimed to evaluate and analyze the distribution of stresses on the palatal micro-implants and the cortical bone at the micro-implant site with optimal orthodontic retraction force in lingual orthodontics. Methods. ANSYS 12.1 software was used to construct the finite element model of the maxillary bone, teeth and the periodontal ligament along with the lingual bracket set-up with wire and the micro-implant. Six- and 8-mm micro-implants were constructed. The final model consisted of 99190 nodes and 324364 elements. A 200-gram of retraction force was applied from the micro-implant to the anterior retraction hook. The micro-implant was embedded between the second premolar and the first molar. Hyper-view software was used to get the results in X-Y-Z dimensions. Results. The maximum von Mises stresses detected were 52.543 MPa for 6-mm micro-implant and 54.489 MPa for 8-mm micro-implant. Maximum stress was at the neck of the micro-implant. The 8-mm implant model showed 6×10-3 mm of lingual displacement. The least displacement of 1×10-3 mm was noticed for both the implant models in the apico-occlusal direction. The maximum von Mises stresses in the cortical bone at the micro-implant site was 18.875 MPa for 6-mm micro-implant and 21.551 MPa for 8-mm micro-implant. Conclusion. Six-mm micro-implant can be the choice for the implant-supported lingual orthodontic retraction as it produced minimal stresses on the cortical bone, and the initial stress displacements produced on the micro-implant were also minimal.https://joddd.tbzmed.ac.ir/PDF/joddd-25214cortical bonefinite element analysisorthodontics
collection DOAJ
language English
format Article
sources DOAJ
author Tarulatha Revanappa Shyagali
Dhaval Aghera
spellingShingle Tarulatha Revanappa Shyagali
Dhaval Aghera
Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research
Journal of Dental Research, Dental Clinics, Dental Prospects
cortical bone
finite element analysis
orthodontics
author_facet Tarulatha Revanappa Shyagali
Dhaval Aghera
author_sort Tarulatha Revanappa Shyagali
title Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research
title_short Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research
title_full Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research
title_fullStr Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research
title_full_unstemmed Evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the FEM: Original research
title_sort evaluation of stress generation on the cortical bone and the palatal micro-implant complex during the implant-supported en masse retraction in lingual orthodontic technique using the fem: original research
publisher Tabriz University of Medical Sciences
series Journal of Dental Research, Dental Clinics, Dental Prospects
issn 2008-210X
2008-2118
publishDate 2019-11-01
description Background. This study aimed to evaluate and analyze the distribution of stresses on the palatal micro-implants and the cortical bone at the micro-implant site with optimal orthodontic retraction force in lingual orthodontics. Methods. ANSYS 12.1 software was used to construct the finite element model of the maxillary bone, teeth and the periodontal ligament along with the lingual bracket set-up with wire and the micro-implant. Six- and 8-mm micro-implants were constructed. The final model consisted of 99190 nodes and 324364 elements. A 200-gram of retraction force was applied from the micro-implant to the anterior retraction hook. The micro-implant was embedded between the second premolar and the first molar. Hyper-view software was used to get the results in X-Y-Z dimensions. Results. The maximum von Mises stresses detected were 52.543 MPa for 6-mm micro-implant and 54.489 MPa for 8-mm micro-implant. Maximum stress was at the neck of the micro-implant. The 8-mm implant model showed 6×10-3 mm of lingual displacement. The least displacement of 1×10-3 mm was noticed for both the implant models in the apico-occlusal direction. The maximum von Mises stresses in the cortical bone at the micro-implant site was 18.875 MPa for 6-mm micro-implant and 21.551 MPa for 8-mm micro-implant. Conclusion. Six-mm micro-implant can be the choice for the implant-supported lingual orthodontic retraction as it produced minimal stresses on the cortical bone, and the initial stress displacements produced on the micro-implant were also minimal.
topic cortical bone
finite element analysis
orthodontics
url https://joddd.tbzmed.ac.ir/PDF/joddd-25214
work_keys_str_mv AT tarulatharevanappashyagali evaluationofstressgenerationonthecorticalboneandthepalatalmicroimplantcomplexduringtheimplantsupportedenmasseretractioninlingualorthodontictechniqueusingthefemoriginalresearch
AT dhavalaghera evaluationofstressgenerationonthecorticalboneandthepalatalmicroimplantcomplexduringtheimplantsupportedenmasseretractioninlingualorthodontictechniqueusingthefemoriginalresearch
_version_ 1724554510024572928