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A biomechanical case study on the optimal orthodontic force on the maxillary canine tooth based on finite element analysis

机译:基于有限元分析的上颌犬牙最佳正畸力的生物力学研究

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摘要

Excessive forces may cause root resorption and insufficient forces would introduce no effect in orthodontics. The objective of this study was to investigate the optimal orthodontic forces on a maxillary canine, using hydrostatic stress and logarithmic strain of the periodontal ligament (PDL) as indicators. Finite element models of a maxillary canine and surrounding tissues were developed. Distal translation/tipping forces, labial translation/tipping forces, and extrusion forces ranging from 0 to 300 g (100 g=0.98 N) were applied to the canine, as well as the force moment around the canine long axis ranging from 0 to 300 g·mm. The stress/strain of the PDL was quantified by nonlinear finite element analysis, and an absolute stress range between 0.47 kPa (capillary pressure) and 12.8 kPa (80% of human systolic blood pressure) was considered to be optimal, whereas an absolute strain exceeding 0.24% (80% of peak strain during canine maximal moving velocity) was considered optimal strain. The stress/strain distributions within the PDL were acquired for various canine movements, and the optimal orthodontic forces were calculated. As a result the optimal tipping forces (40–44 g for distal-direction and 28–32 g for labial-direction) were smaller than the translation forces (130–137 g for distal-direction and 110–124 g for labial-direction). In addition, the optimal forces for labial-direction motion (110–124 g for translation and 28–32 g for tipping) were smaller than those for distal-direction motion (130–137 g for translation and 40–44 g for tipping). Compared with previous results, the force interval was smaller than before and was therefore more conducive to the guidance of clinical treatment. The finite element analysis results provide new insights into orthodontic biomechanics and could help to optimize orthodontic treatment plans.
机译:太大的力可能导致牙根吸收,而不足的力不会对正畸产生影响。这项研究的目的是使用牙周膜(PDL)的静水压力和对数应变来研究上颌犬的最佳正畸力。建立了上颌犬及其周围组织的有限元模型。向犬施加了范围从0到300 g(100 g = 0.98 N)的远侧平移/倾斜力,唇部平移/倾斜力和挤压力,以及围绕犬长轴的力力矩范围从0到300克·毫米。通过非线性有限元分析对PDL的应力/应变进行了定量,并且认为绝对应力范围在0.47 kPa(毛细管压力)和12.8 kPa(人类收缩压的80%)之间是最佳的,而绝对应变超过0.24%(犬最大运动速度时峰值应变的80%)被认为是最佳应变。获取了各种犬类运动的PDL内的应力/应变分布,并计算了最佳的正畸力。结果,最佳倾翻力(远端方向为40-44 g,唇侧方向为28-32 g)小于平移力(远端方向为130-137 g,唇侧方向为110-124 g )。此外,唇向运动的最佳力(平移110-124 g,倾斜的最佳力为28-32 g)小于远侧运动的最佳力(平移130-137 g,倾斜的40-44 g) 。与以前的结果相比,力的间隔比以前小,因此更有利于临床治疗的指导。有限元分析结果为正畸生物力学提供了新的见解,并可能有助于优化正畸治疗计划。

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