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运用有限元法确定安氏II类1分类错牙合患者的牙-牙周应力

Using the Finite Element Method to Determine the Odonto-Periodontal Stress for a Patient with Angle Class II Division 1 Malocclusion.

作者信息

Katta Mahmoud, Petrescu Stelian-Mihai-Sever, Dragomir Lucian Paul, Popescu Mihai Raul, Georgescu Ruxandra Voinea, Țuculină Mihaela Jana, Popa Dragoș Laurențiu, Duță Alina, Diaconu Oana Andreea, Dascălu Ionela Teodora

机构信息

Department of Orthodontics, Faculty of Dental Medicine, University of Medicine and Pharmacy of Craiova, 200349 Craiova, Romania.

Department of Occlusology and Fixed Prosthetics, Faculty of Dental Medicine, University of Medicine and Pharmacy of Craiova, 200349 Craiova, Romania.

出版信息

Diagnostics (Basel). 2023 Apr 27;13(9):1567. doi: 10.3390/diagnostics13091567.

Abstract

The finite element method (FEM) is a computational method that can solve all biomechanical problems, including the field of orthodontics. The purpose of this virtual experimental study is to determine the behavior of a real orthodontic system subjected to different systems of loads. To analyze the real orthodontic system, we studied the case of a 21-year-old female patient. We used the InVesalius program, which can transform a set of DICOM-type images taken from cone beam computed tomography (CBCT) into three-dimensional structures. These structures were edited, modified, completed, and analyzed from a geometric point of view with the help of the Geomagic software. The final result of these operations must be a three-dimensional model made up of perfectly closed surfaces so that they can be transformed into virtual solids. The model consisting of perfectly closed surfaces is loaded into computer-aided design (CAD) programs. Bracket and tube components, as well as orthodontic wires, can be added to these models, similar to the analyzed patient's tissues. When the model is complete and geometrically correct, it is exported to a program that uses FEM, such as Ansys Workbench. The simulation was performed for the forces of 0.5, 0.6, 0.7, 0.8, 0.9, and 1 N. The intention was to determine the behavior of the entire orthodontic system for these force values. After running the simulations, result maps were obtained that were composed of displacement, strain, and stress diagrams. It was also found that, in addition to the known rigidity, the orthodontic system has some elasticity due to the orthodontic wires, as well as the periodontal ligaments. Thus, a virtual analysis study can be carried out starting from a real patient with pre-treatment CBCT images and the virtual models of the bracket and tube elements and of the orthodontic wires.

摘要

有限元法(FEM)是一种能够解决所有生物力学问题的计算方法,包括正畸领域。本虚拟实验研究的目的是确定一个实际正畸系统在不同载荷系统作用下的行为。为了分析实际正畸系统,我们研究了一名21岁女性患者的病例。我们使用了InVesalius程序,该程序可以将从锥形束计算机断层扫描(CBCT)获取的一组DICOM类型图像转换为三维结构。借助Geomagic软件,从几何角度对这些结构进行编辑、修改、完善和分析。这些操作的最终结果必须是一个由完美封闭表面组成的三维模型,以便它们可以转换为虚拟实体。由完美封闭表面组成的模型被加载到计算机辅助设计(CAD)程序中。可以将托槽和管部件以及正畸钢丝添加到这些模型中,类似于所分析患者的组织。当模型完整且几何形状正确时,将其导出到使用有限元法的程序中,如Ansys Workbench。对0.5、0.6、0.7、0.8、0.9和1 N的力进行了模拟。目的是确定整个正畸系统在这些力值下的行为。运行模拟后,获得了由位移、应变和应力图组成的结果图。还发现,除了已知的刚度外,正畸系统由于正畸钢丝以及牙周韧带而具有一定的弹性。因此,可以从具有治疗前CBCT图像的实际患者以及托槽和管元件以及正畸钢丝的虚拟模型开始进行虚拟分析研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa03/10177595/3014e8583c4c/diagnostics-13-01567-g001.jpg

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