Literature DB >> 3479896

Three-dimensional finite element analysis for stress in the periodontal tissue by orthodontic forces.

K Tanne1, M Sakuda, C J Burstone.   

Abstract

This study was designed to investigate the stress levels induced in the periodontal tissue by orthodontic forces using the three-dimensional finite element method. The three-dimensional finite element model of the lower first premolar was constructed on the basis of average anatomic morphology and consisted of 240 isoparametric elements. Principal stresses were determined at the root, alveolar bone, and periodontal ligament (PDL). In all loading cases for the buccolingually directed forces, three principal stresses in the PDL were very similar. At the surface of the root and the alveolar bone, large bending stresses acting almost in parallel to the root were generally observed. During tipping movement, stresses nonuniformly varied with a large difference from the cervix to the apex of the root. On the other hand, in case of movement approaching translation, the stresses induced were either tensile or compressive at all occlusogingival levels with some difference of the stress from the cervix to the apex. The pattern and magnitude of stresses in the periodontium from a given magnitude of force were markedly different, depending on the center of rotation of the tooth.

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Year:  1987        PMID: 3479896     DOI: 10.1016/0889-5406(87)90232-0

Source DB:  PubMed          Journal:  Am J Orthod Dentofacial Orthop        ISSN: 0889-5406            Impact factor:   2.650


  37 in total

1.  Simulation of orthodontic tooth movements. A comparison of numerical models.

Authors:  C Bourauel; D Freudenreich; D Vollmer; D Kobe; D Drescher; A Jäger
Journal:  J Orofac Orthop       Date:  1999       Impact factor: 1.938

2.  The mechanical function of the periodontal ligament in the macaque mandible: a validation and sensitivity study using finite element analysis.

Authors:  Olga Panagiotopoulou; Kornelius Kupczik; Samuel N Cobb
Journal:  J Anat       Date:  2011-01       Impact factor: 2.610

3.  Understanding the basis of space closure in Orthodontics for a more efficient orthodontic treatment.

Authors:  Gerson Luiz Ulema Ribeiro; Helder B Jacob
Journal:  Dental Press J Orthod       Date:  2016 Mar-Apr

4.  Biomechanical influence of anchorages on orthodontic space closing mechanics by sliding method.

Authors:  Zhan Liu; Tinghui Sun; Yubo Fan
Journal:  Med Biol Eng Comput       Date:  2020-03-11       Impact factor: 2.602

5.  Finite element study of controlling factors of anterior intrusion and torque during Temporary Skeletal Anchorage Device (TSAD) dependent en masse retraction without posterior appliances: Biocreative hybrid retractor (CH-retractor).

Authors:  Sung-Seo Mo; Min-Ki Noh; Seong-Hun Kim; Kyu-Rhim Chung; Gerald Nelson
Journal:  Angle Orthod       Date:  2019-10-07       Impact factor: 2.079

6.  [A FEM study for the biomechanical comparison of labial and palatal force application on the upper incisors. Finite element method].

Authors:  P G Jost-Brinkmann; K Tanne; M Sakuda; R R Miethke
Journal:  Fortschr Kieferorthop       Date:  1993-04

7.  [The practical aspects of using "superelastic" arch wires in the edgewise technic].

Authors:  L Linge; S Dahm
Journal:  Fortschr Kieferorthop       Date:  1994-12

8.  Finite element modelling of squirrel, guinea pig and rat skulls: using geometric morphometrics to assess sensitivity.

Authors:  P G Cox; M J Fagan; E J Rayfield; N Jeffery
Journal:  J Anat       Date:  2011-10-05       Impact factor: 2.610

9.  A novel biomechanical model assessing continuous orthodontic archwire activation.

Authors:  Christopher Canales; Matthew Larson; Dan Grauer; Rose Sheats; Clarke Stevens; Ching-Chang Ko
Journal:  Am J Orthod Dentofacial Orthop       Date:  2013-02       Impact factor: 2.650

10.  Torque control during lingual anterior retraction without posterior appliances.

Authors:  Sung-Seo Mo; Seong-Hun Kim; Sang-Jin Sung; Kyu-Rhim Chung; Yun-Sic Chun; Yoon-Ah Kook; Gerald Nelson
Journal:  Korean J Orthod       Date:  2013-02-26       Impact factor: 1.372

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