* Departments of Endowed Chair of Oral Technology.
Eur J Orthod. 2013 Dec;35(6):811-8. doi: 10.1093/ejo/cjs103. Epub 2013 Jan 12.
The analysis of the non-linear and time-dependent viscoelasticity of the periodontal ligament (PDL) enables a better understanding of the biomechanical features of the key regulator tissue for tooth movement. This is of great significance in the field of orthodontics as targeted tooth movement remains still one of the main goals to accomplish. The investigation of biomechanical aspects of the PDL function, a difficult area of research, helps towards this direction. After analysing the time-dependent biomechanical properties of pig PDL specimens in an in vitro experimental study, it was possible to confirm that PDL has a viscoelastic anisotropic behaviour. Three-dimensional finite element models of mini-pig mandibular premolars with surrounding tissues were developed, based on micro-computed tomography (μCT) data of the experimental specimens. Tooth mobility was numerically analysed under the same force systems as used in the experiment. A bilinear material parameter set was assumed to simulate tooth displacements. The numerical force/displacement curves were fitted to the experimental curves by repeatedly calculating tooth displacements of 0.2mm varying the loading velocities and the parameters, which describe the nonlinearity. The experimental results showed a good agreement with the numerical calculations. Mean values of Young's moduli E1, E2 and ultimate strain ε12 were derived for the elastic behaviour of the PDL for all loading velocities. E1 and E2 values increased with increasing the velocity, while ε12 remained relatively stable. A bilinear approximation of material properties of the PDL is a suitable description of measured force/displacement diagrams. The numerical results can be used to describe mechanical processes, especially stress-strain distributions in the PDL, accurately. Further development of suitable modelling assumptions for the response of PDL under load would be instrumental to orthodontists and engineers for designing more predictable orthodontic force systems and appliances.
分析牙周韧带(PDL)的非线性和时变粘弹性,有助于更好地理解牙齿运动的关键调节组织的生物力学特征。这在正畸领域具有重要意义,因为靶向牙齿移动仍然是主要目标之一。研究 PDL 功能的生物力学方面,这是一个具有挑战性的研究领域,有助于朝这个方向发展。通过对体外实验研究中猪 PDL 标本的时变生物力学特性进行分析,证实了 PDL 具有粘弹性各向异性行为。基于实验标本的微计算机断层扫描(μCT)数据,建立了带有周围组织的小型猪下颌前磨牙的三维有限元模型。在与实验中使用的相同力系统下,对牙齿移动进行了数值分析。采用双线性材料参数集来模拟牙齿位移。通过反复计算加载速度和描述非线性的参数变化为 0.2mm 的牙齿位移,将数值力/位移曲线拟合到实验曲线。数值计算结果与实验结果吻合良好。得出了所有加载速度下 PDL 弹性行为的杨氏模量 E1、E2 和极限应变 ε12 的平均值。E1 和 E2 值随加载速度的增加而增加,而 ε12 相对稳定。PDL 材料性能的双线性近似是对测量的力/位移图的合适描述。数值结果可用于准确描述机械过程,特别是 PDL 中的应力-应变分布。进一步开发 PDL 在载荷下响应的合适建模假设,将有助于正畸医生和工程师设计更可预测的正畸力系统和矫治器。