正畸牙齿移动的数值模拟生物力学研究。牙周膜主应力的影响[j]。

Y Inoue
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引用次数: 0

摘要

生物力学因素对牙齿运动的影响还没有定量的研究。本研究旨在探讨应力对牙齿运动的影响,采用数值模拟。通过模拟研究了牙周膜杨氏模量的降低对犬牙回缩的影响。以日本犬的平均解剖形态为基础,建立了二维有限元模型。开发了基于有限元法的正畸牙齿运动数值模拟程序。评估牙周膜的应力。选取绝对值较大的主应力作为参考应力。牙槽骨-牙周膜界面的每个节点在参考应力方向上重新定位,以响应假设阈值与参考应力之间的差异。对该模型支架位置的力矩与力(M/F)比进行了检查,以评估受力情况。在三种力条件下对远端运动进行模拟,在两种力条件下对垂直运动进行模拟。通过数值模拟显示了犬的三种收缩运动,即倾倒运动、身体运动和牙根运动。挤压和侵入也有显示。利用主应力的最大和最小主应力阈值分别为+0.4 gf/mm2和-0.4 gf/mm2,犬类的解析运动接近于已报道的实际牙齿运动。牙周膜杨氏模量的降低使相同受力条件下的身体运动转变为倾翻运动。结果表明,牙周膜主应力的大小和方向是影响牙齿运动的关键因素,该数值模拟有助于研究生物力学因素对牙齿运动的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Biomechanical study on orthodontic tooth movement by means of numerical simulation. Effects of principal stresses in periodontal membrane].

The effect of biomechanical factors on tooth movement has not been clarified in a quantitative manner. This study was designed to investigate the stresses affecting tooth movement, using a numerical simulation. The influence of decrease in Young's modulus of the periodontal membrane on canine retraction was also examined through the simulation. A two-dimensional finite element model was constructed based on the average anatomic morphology of Japanese canine. A numerical simulation program based on the finite element method was developed for the orthodontic tooth movement. The stresses in the periodontal membrane were evaluated. The principal stress of which absolute is larger was selected as a reference stress. Each nodal point at the alveolar bone-periodontal membrane interface was repositioned in the direction of reference stresses, in response to discrepancy between assumed thresholds and the reference stresses. Moment to force (M/F) ratios at the bracket position of this model were examined for evaluating force conditions. Simulation of tooth movement were executed under three force conditions with different M/F ratios for distal movements and two force conditions for vertical movements. Three types of canine retraction, tipping movement, bodily movement and root movement, were displayed with the numerical simulation. Extrusion and intrusion were also displayed. Analytic movements of the canine were close to the actual tooth movements that have been reported, utilizing the principal stresses with the thresholds of the maximum and minimum principal stresses being about +0.4 gf/mm2 and -0.4 gf/mm2. The decrease in the Young's modulus of the periodontal membrane changed bodily movement to tipping movement under the same force conditions. These results indicate that the value and the direction of the principal stress in the periodontal membrane are key determinants of tooth movement and this numerical simulation is useful for investigating the influence of the biomechanical factors on tooth movement.

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