Literature DB >> 32338652

A Finite Element Approach for Locating the Center of Resistance of Maxillary Teeth.

Bill Luu1, Edward Anthony Cronauer2, Vaibhav Gandhi1, Jonathan Kaplan3, David M Pierce4, Madhur Upadhyay5.   

Abstract

The center of resistance (CRES) is regarded as the fundamental reference point for predictable tooth movement. The methods used to estimate the CRES of teeth range from traditional radiographic and physical measurements to in vitro analysis on models or cadaver specimens. Techniques involving finite element analysis of high-dose micro-CT scans of models and single teeth have shown a lot of promise, but little has been done with newer, low-dose, and low resolution cone beam computed tomography (CBCT) images. Also, the CRES for only a few select teeth (i.e., maxillary central incisor, canine, and first molar) have been described; the rest have been largely ignored. There is also a need to describe the methodology of determining the CRES in detail, so that it becomes easy to replicate and build upon. This study used routine CBCT patient images for developing tools and a workflow to obtain finite element models for locating the CRES of maxillary teeth. The CBCT volume images were manipulated to extract three-dimensional (3D) biological structures relevant in determining the CRES of the maxillary teeth by segmentation. The segmented objects were cleaned and converted into a virtual mesh made up tetrahedral (tet4) triangles having a maximum edge length of 1 mm with 3matic software. The models were further converted into a solid volumetric mesh of tetrahedrons with a maximum edge length of 1 mm for use in finite element analysis. The engineering software, Abaqus, was used to preprocess the models to create an assembly and set material properties, interaction conditions, boundary conditions, and load applications. The loads, when analyzed, simulated the stresses and strains on the system, aiding in locating the CRES. This study is the first step in accurate prediction of tooth movement.

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Year:  2020        PMID: 32338652     DOI: 10.3791/60746

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  1 in total

1.  Torque movement of the upper anterior teeth using a clear aligner in cases of extraction: a finite element study.

Authors:  Yuxun Cheng; Jie Gao; Shishu Fang; Wei Wang; Yanning Ma; Zuolin Jin
Journal:  Prog Orthod       Date:  2022-08-01       Impact factor: 3.247

  1 in total

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