节段弓力学结合动力臂控制前牙移动的生物力学方面:三维有限元研究。

Journal of dental biomechanics Pub Date : 2015-01-08 eCollection Date: 2015-01-01 DOI:10.1177/1758736014566337
Hiroya Ozaki, Jun-Ya Tominaga, Ryo Hamanaka, Mayumi Sumi, Pao-Chang Chiang, Motohiro Tanaka, Yoshiyuki Koga, Noriaki Yoshida
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引用次数: 17

摘要

本研究的目的是确定动力臂的最佳长度,以实现分段弓力学结合动力臂控制前牙运动。采用三维有限元方法对分段动力臂力学中前牙整体后缩过程进行了模拟。施加回缩力后,计算出上颌中切牙旋转中心位置与动力臂长度的关系,即牙的运动类型。将0.017 × 0.022 in的拱丝插入0.018 in的槽式支架中,在动力臂长度为9.1 mm处,即阻力中心上方1.8 mm处,可获得身体运动。当使用0.018 × 0.025 In的全尺寸弓丝时,牙体运动发生在力臂长度为7.0 mm处,即阻力中心以下0.3 mm处。与滑动力学相比,分段弓力学需要更短的动力臂来实现任何类型的前牙控制运动。因此,这种间隙闭合机制可以广泛应用于牙龈颊襞较浅的患者。节段弓力学结合动力臂可以提供更高的力矩-力比,足以在不产生摩擦的情况下控制前牙的运动,并且当平行于咬合平面施加收缩力时可以提供垂直力。因此,我们认为分段式动力臂机械具有简单的矫治器设计,并且可以实现更有效和可控的牙齿运动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Biomechanical aspects of segmented arch mechanics combined with power arm for controlled anterior tooth movement: A three-dimensional finite element study.

The porpose of this study was to determine the optimal length of power arms for achieving controlled anterior tooth movement in segmented arch mechanics combined with power arm. A three-dimensional finite element method was applied for the simulation of en masse anterior tooth retraction in segmented power arm mechanics. The type of tooth movement, namely, the location of center of rotation of the maxillary central incisor in association with power arm length, was calculated after the retraction force was applied. When a 0.017 × 0.022-in archwire was inserted into the 0.018-in slot bracket, bodily movement was obtained at 9.1 mm length of power arm, namely, at the level of 1.8 mm above the center of resistance. In case a 0.018 × 0.025-in full-size archwire was used, bodily movement of the tooth was produced at the power arm length of 7.0 mm, namely, at the level of 0.3 mm below the center of resistance. Segmented arch mechanics required shorter length of power arms for achieving any type of controlled anterior tooth movement as compared to sliding mechanics. Therefore, this space closing mechanics could be widely applied even for the patients whose gingivobuccal fold is shallow. The segmented arch mechanics combined with power arm could provide higher amount of moment-to-force ratio sufficient for controlled anterior tooth movement without generating friction, and vertical forces when applying retraction force parallel to the occlusal plane. It is, therefore, considered that the segmented power arm mechanics has a simple appliance design and allows more efficient and controllable tooth movement.

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