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一个包含颞下颌关节的下颌骨三维有限元模型及其在紧咬时颞下颌关节应力分析中的应用。

A three-dimensional finite element model of the mandible including the TMJ and its application to stress analysis in the TMJ during clenching.

作者信息

Tanaka E, Tanne K, Sakuda M

机构信息

Department of Orthodontics, Osaka University Faculty of Dentistry, Japan.

出版信息

Med Eng Phys. 1994 Jul;16(4):316-22. doi: 10.1016/1350-4533(94)90058-2.

DOI:10.1016/1350-4533(94)90058-2
PMID:7952667
Abstract

The purpose of this study was to develop a three-dimensional finite element model of the mandible including the temporomandibular joint (TMJ) and further to investigate stress distributions in the TMJ during clenching. The model consisted of 2088 nodes and 1105 elements, comprising cortical and cancellous bones, articular disc, articular cartilage layer and periodontal ligament. For loading condition, a resultant force of 500 N derived from the cross-sectional areas of the muscles was applied to the model. Compressive stresses were induced in the anterior, middle and lateral areas of the TMJ during clenching, whereas the tensile stresses were induced in the posterior and medial areas. The mean principal stresses on the surface of condyle were -1.642, -0.543, 0.664, -1.017, 0.521 MPa in the anterior, middle, posterior, lateral and medial areas, respectively. The mean stresses on the surface of glenoid fossa were approximately 1/5 to 4/5 those on the surface of condyle, although the patterns of stress distributions were almost similar. In both the articular disc and cartilage layer, the stress distributions were very approximate in qualitative and quantitative aspects. Thus, it is shown that stresses during clenching vary substantially in different structures and areas of the TMJ and that the stresses are reduced by the articular disc and cartilage layer in comparison with actual biting forces exerted by the masticatory muscles, if anatomic relation between various TMJ components is well maintained.

摘要

本研究的目的是建立一个包含颞下颌关节(TMJ)的下颌骨三维有限元模型,并进一步研究紧咬时TMJ中的应力分布。该模型由2088个节点和1105个单元组成,包括皮质骨和松质骨、关节盘、关节软骨层和牙周韧带。对于加载条件,将源自肌肉横截面积的500 N合力施加于模型。紧咬时,TMJ的前部、中部和外侧区域产生压应力,而后部和内侧区域产生拉应力。髁突表面的平均主应力在前部、中部、后部、外侧和内侧区域分别为-1.642、-0.543、0.664、-1.017、0.521 MPa。关节窝表面的平均应力约为髁突表面平均应力的1/5至4/5,尽管应力分布模式几乎相似。在关节盘和软骨层中,应力分布在定性和定量方面都非常近似。因此,研究表明,紧咬时TMJ不同结构和区域的应力差异很大,并且如果TMJ各组成部分之间的解剖关系保持良好,与咀嚼肌实际施加的咬合力相比,关节盘和软骨层可降低应力。

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