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Simulation of initial tooth displacement by inversekinematic modeling: Prediction of anchorage-lossfor orthodontic tooth movement

机译:逆行模拟初始牙齿位移的模拟:预测静止牙齿运动的损失

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The amount of tooth displacement under orthodontic loads has proven to be independent of force magnitudes. The underlying bio-physical process of this phenomenon remains uncertain. The aim of this study was to describe and simulate the initial response of periodontal ligament (PDL) by means of inverse kinematic modeling. The model was developed based on the experimental data for tooth translation along a straight line. The reaction of the PDL was assumed to derive from viscoelastic and complementary elements. An algorithm of putative poroelasticity allowed the number of elements that participate in the reaction to increase in proportion to the orthodontic force. The simulation outcomes showed consistency with the measured data. The orthodontic retraction between the premolar and two-molar segment was also simulated. The two-molar displacement was 85% of that of the premolar displacement. The results demonstrate that the inverse kinematic model is capable of predicting the tooth displacement that is independent of the force magnitude.
机译:正畸载荷下的牙齿位移量已被证明与力幅度无关。这种现象的潜在生物物理过程仍然不确定。本研究的目的是通过逆运动学建模描述和模拟牙周韧带(PDL)的初始响应。该模型是基于沿直线翻译的实验数据开发的。假设PDL的反应衍生粘弹性和互补元素。推定的孔弹性算法允许参与反应的元素数量与正畸力成比例地增加。仿真结果显示与测量数据的一致性。还模拟了磨牙和双摩尔链段之间的正畸缩回。双摩尔位移为磨牙位移的85%。结果表明,反向运动模型能够预测与力幅度无关的齿位移。

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