Three-dimensional finite-element analysis of maxillary

被引:50
|
作者
Yu, Hyung S.
Baik, Hyoung S.
Sung, Sang J.
Kim, Kee D.
Cho, Young S.
机构
[1] Yonsei Univ, Coll Dent, Dept Orthodont, Seoul 120752, South Korea
[2] Yonsei Univ, Dept Oral Maxillofacial Radiol, Seoul 120749, South Korea
[3] Univ Ulsan, Dept Dent, Seoul, South Korea
[4] Hanyang Univ, Dept Mech Engn, Seoul 133791, South Korea
关键词
D O I
10.1093/ejo/cjl057
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
The aims of this study were to determine the reaction of the craniofacial bones on the protraction force transferred to the maxillary body, and whether or not the midpalatal suture had opened during skeletal Class III treatment. A computerized tomograph was obtained from a dry skull with a normal occlusion to construct a three-dimensional finite-element model (3D.FEM) of the craniofacial bones and the maxillary teeth to simulate actual bone reactions. A protraction force of 500 g was applied at the first premolar region, directed 20 degrees inferior to the occlusal plane. The displacement and the stress distribution of the craniofacial bones and sutures were then calculated using the ANSYS 5.3 program dividing the analysis into two simulations, based on whether or not the midpalatal suture was opened. The results showed that there was less compressive stress and greater tensile stress in the circumaxillary suture areas when the midpalatal suture was opened. The amount of displacement and deformation when the midpalatal suture was opened also demonstrated a decrease in upward-forward rotation of the maxilla and zygomatic arch and greater amounts of displacement in the frontal, vertical, and lateral directions compared with no opening of the midpalatal suture. Analysis of these results showed that maxillary protraction produce similar changes to normal downward and forward growth of the maxilla and was achieved with accompanying opening of the midpalatal suture.
引用
收藏
页码:118 / 125
页数:8
相关论文
共 50 条
  • [31] Three-Dimensional Finite-Element Modeling of Nailed Connections in Wood
    Hong, Jung-Pyo
    Barrett, David
    [J]. JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 2010, 136 (06): : 715 - 722
  • [32] Nonlinear, three-dimensional finite-element model of skin biomechanics
    Kirby, SD
    Wang, B
    To, CWS
    Lampe, HB
    [J]. JOURNAL OF OTOLARYNGOLOGY, 1998, 27 (03): : 153 - 160
  • [33] Three-dimensional finite-element model for stratified coastal seas
    Li, YS
    Zhan, JM
    [J]. JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 1998, 124 (07): : 699 - 703
  • [34] Three-dimensional finite-element modeling of optical microring resonators
    Milanovic, B.
    Radjenovic, B.
    Radmilovic-Radjenovic, M.
    [J]. PHYSICA SCRIPTA, 2012, T149
  • [35] Three-Dimensional Solar Cell Finite-Element Sintering Simulation
    Brown, Gordon R.
    Levine, Richard A.
    Shaikh, Aziz
    Olevsky, Eugene A.
    [J]. JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2009, 92 (07) : 1450 - 1455
  • [36] Three-dimensional finite element simulation of intrusion of the maxillary central incisor
    Ryniewicz, Wojciech
    Ryniewicz, Anna M.
    Bojko, Lulzasz
    Pelka, Piotr
    Filipek, Jolanta
    Williams, Stephen
    Loster, Bartiomiej W.
    [J]. BIOCYBERNETICS AND BIOMEDICAL ENGINEERING, 2016, 36 (02) : 385 - 390
  • [37] Finite element analysis of a three-dimensional package
    Zhong, Z
    Yip, PK
    [J]. SOLDERING & SURFACE MOUNT TECHNOLOGY, 2003, 15 (01) : 21 - 25
  • [38] Three-dimensional finite element analysis shelves
    Zhao, Xiuting
    Meng, Jin
    [J]. MATERIALS AND COMPUTATIONAL MECHANICS, PTS 1-3, 2012, 117-119 : 639 - 642
  • [40] Three-Dimensional Large Deformation Finite-Element Analysis of Plate Anchors in Uniform Clay
    Wang, Dong
    Hu, Yuxia
    Randolph, Mark F.
    [J]. JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2010, 136 (02) : 355 - 365