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首页> 外文期刊>Journal of Biomechanics >Finite element sub-modeling analyses of damage to enamel at the incisor enamel/adhesive interface upon de-bonding for different orthodontic bracket bases.
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Finite element sub-modeling analyses of damage to enamel at the incisor enamel/adhesive interface upon de-bonding for different orthodontic bracket bases.

机译:对于不同的正畸托槽基座,脱粘后在门牙釉质/粘合剂界面处对牙釉质的损伤的有限元子模型分析。

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摘要

This study investigates the micro-mechanical behavior associated with enamel damage at an enamel/adhesive interface for different bracket bases subjected to various detachment forces using 3-D finite element (FE) sub-modeling analysis. Two FE macro-models using triangular and square bracket bases subjected to shear, tensile and torsional de-bonding forces were established using muCT images. Six enamel/adhesive interface sub-models with micro- resin tag morphology and enamel rod arrangement were constructed at the corresponding stress concentrations in macro-model results. The boundary conditions for the sub-models were determined from the macro-model results and applied in sub-modeling analysis. The enamel and resin cement stress concentrations for triangular and square bases were observed at the adhesive bottom towards the occlusal surface under shear force and at the mesial and distal side planes under tensile force. The corresponding areas under torsional force were at the three corners of the adhesive for the triangular base and at the adhesive bottom toward/off the occlusal surface for the square base. In the sub-model analysis, the concentration regions were at the resin tag base and in the region around the etched holes in the enamel. These were perfectly consistent with morphological observations in a parallel in vitro bracket detachment experiment. The critical de-bonding forces damaging the enamel for the square base were lower than those of the triangular base for all detached forces. This study establishes that FE sub-modeling can be used to simulate the stress pattern at the micro-scale enamel/adhesive interface, suggesting that a square base bracket might be better than a triangular bracket. A de-bonding shear force can detach a bracket more easily than any other force with a lower risk of enamel loss.
机译:这项研究使用3-D有限元(FE)子模型分析研究了在不同的分离力作用下,不同托架底座在牙釉质/胶粘剂界面处牙釉质损伤的微观力学行为。使用muCT图像建立了两个使用三角形和方括号基础的有限元宏模型,这些基础承受了剪切,拉伸和扭转去粘力。在宏观模型结果中,在相应的应力集中,构造了六个具有微树脂标签形态和搪瓷棒排列的搪瓷/胶粘剂界面子模型。根据宏观模型结果确定子模型的边界条件,并将其应用于子模型分析。在剪切力作用下,在胶粘剂底部朝着咬合面处观察到了三角形和正方形基底的牙釉质和树脂粘固剂的应力集中,在张力作用下,在中,远端侧面观察到了这种情况。扭转力下的相应区域在用于三角形基体的粘合剂的三个角处,在朝向/离开方形基体的咬合面的粘合剂底部。在子模型分析中,浓度区域位于树脂标签底部和搪瓷中蚀刻孔周围的区域中。这些与在平行的体外支架脱离实验中的形态学观察完全一致。对于所有分离力而言,破坏方形底座的瓷釉的临界剥离力低于三角形底座的临界剥离力。这项研究建立了有限元子模型可以用来模拟微尺度搪瓷/胶粘剂界面的应力模式,这表明方形的基础支架可能比三角形的支架更好。脱粘剪切力比任何其他力都更容易使支架脱落,从而降低瓷釉损失的风险。

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