Group of Biomaterials, Aragon Institute of Engineering Research (I3A), University of Zaragoza, Zaragoza, Spain.
Group of Biomaterials, Aragon Institute of Engineering Research (I3A), University of Zaragoza, Zaragoza, Spain.
J Mech Behav Biomed Mater. 2018 Mar;79:135-149. doi: 10.1016/j.jmbbm.2017.12.022. Epub 2017 Dec 28.
The periodontal ligament (PDL) is a porous and fibrous soft tissue situated around the tooth, which plays a key role in the transmission of loads from the tooth to the alveolar bone of the mandible. Although several studies have tried to characterize its mechanical properties, the behaviour of this tissue is not clear yet. In this study, a new simulation methodology based on a material model which considers the contribution of porous and fibrous structure with different material model formulations depending on the effort direction is proposed. The defined material model was characterized by a non-linear approximation of the porous fibrous matrix to experimental results obtained from samples of similar species and was validated by rigorous test simulations under tensile and compressive loads. The global PDL response was also validated using the parameters of the characterization in a finite element model of full human canine tooth obtained by micro-tomography. The results suggest that the porous contribution has high influence during compression because the bulk modulus of the material depends on the ability of interstitial fluid to drain. On the other hand, the collagen fibres running along the load direction are the main responsible of the ligament stiffness during tensile efforts. Thus, a material model with distinct responses depending of the load direction is proposed. Furthermore, the results suggest the importance of considering 3D finite element models based of the real morphology of human PDL for representing the irregular stress distribution caused by the coupling of complex material models and irregular morphologies.
牙周韧带(PDL)是一种多孔纤维状软组织,位于牙齿周围,在将牙齿的负载传递到下颌牙槽骨方面起着关键作用。尽管已有多项研究试图对其力学特性进行描述,但该组织的行为仍不明确。在本研究中,提出了一种新的模拟方法,基于一种材料模型,该模型考虑了多孔和纤维结构的贡献,并根据作用方向采用不同的材料模型公式。定义的材料模型通过对多孔纤维基质进行非线性逼近,与来自相似物种的样本的实验结果相匹配,并通过拉伸和压缩载荷下的严格测试模拟进行了验证。还通过使用微断层扫描获得的全人犬齿的有限元模型中的特征化参数来验证整体 PDL 响应。结果表明,在压缩过程中,多孔结构的贡献具有很大的影响,因为材料的体积模量取决于间隙流体的排出能力。另一方面,沿载荷方向运行的胶原纤维是拉伸过程中韧带刚度的主要决定因素。因此,提出了一种根据载荷方向具有不同响应的材料模型。此外,结果表明,对于代表复杂材料模型和不规则形态之间的耦合所导致的不规则应力分布,考虑基于人牙周韧带真实形态的三维有限元模型是很重要的。