Finite element analysis of the stress state produced by an orthodontic skeletal anchorage system based on miniscrews

A. Ancillao, U. Andreaus
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引用次数: 13

Abstract

Aims: The aim of this work is to produce detailed analysis and quantitative results of the stress state induced in an inferior first molar tooth by an orthodontic mesialization system based on a mini-screw, a bracket, and a rubber elastic string. Materials and Methods: The implant was modeled as a non-osteointegrated Ti-6Al-4V standard mini-screw, implanted in the anterior-buccal region of human jaw. 3D realistic models were constructed using data based on micro-computed tomography scans of human teeth as found in the literature. A couple of self-balanced forces of 4 N was applied and finite element method analysis was run and produced an approximate solution, which allowed to display stress distribution over the whole model. Materials′ behavior was assumed elastic and linear. This approximation applies to the 1 st stage of the orthodontic treatments. Results: A detailed qualitative and quantitative analysis of the stress state is presented through images. Results in terms of stresses and displacements were studied to exclude any possibility of bracket debonding, bone failure, and loss of stability of the screw. Results were compared to the ultimate strengths of the bio-materials involved using engineering failure criteria. The actual stress state was found to be lower than the critical values. Conclusion: Results allows to qualitatively see the amount of bone, surronding the mini-screw, and the tooth, that undergoes stress. Furthermore, quantitative analysis of stress could exclude failure in alveolar bone and detachment at the enamel-bracket interface. The applied force and devices were proved to be safe to use for this kind of orthodontic facilities.
基于微钉的正畸骨支抗系统应力状态的有限元分析
目的:本研究的目的是对基于微型螺钉、支架和橡胶弹性绳的正畸化系统在下颌第一磨牙中引起的应力状态进行详细的分析和定量的结果。材料与方法:采用非骨整合Ti-6Al-4V标准微型螺钉模型,植入人颌前颊区。利用文献中发现的基于人类牙齿微计算机断层扫描的数据构建三维逼真模型。施加了一对4牛的自平衡力,并进行了有限元分析,得到了一个近似解,可以显示整个模型的应力分布。假定材料的行为是弹性的和线性的。这个近似适用于正畸治疗的第一阶段。结果:通过图像对应力状态进行了详细的定性和定量分析。研究了应力和位移方面的结果,以排除支架脱落、骨衰竭和螺钉稳定性丧失的任何可能性。结果与工程失效准则中涉及的生物材料的极限强度进行了比较。实际应力状态低于临界值。结论:结果可以定性地看到微型螺钉周围的骨量和承受应力的牙齿。此外,定量分析应力可以排除牙槽骨的破坏和牙釉质-托槽界面的脱离。所施加的力和装置被证明是安全的用于这种正畸设施。
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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