Tanne K, Hiraga J, Kakiuchi K, Yamagata Y, Sakuda M
Department of Orthodontics, Osaka University Faculty of Dentistry, Japan.
Am J Orthod Dentofacial Orthop. 1989 Mar;95(3):200-7. doi: 10.1016/0889-5406(89)90050-4.
This study was designed to investigate the biomechanical effect of protractive maxillary orthopedic forces on the craniofacial complex by use of the three-dimensional finite element method (FEM). The three-dimensional FEM model was developed on the basis of a dry skull of a young human being. The model consisted of 2918 nodes and 1776 solid elements. Eighteen cranial and facial sutural systems were integrated in the model. An anteriorly directed 1.0-kg force was applied on the buccal surfaces of the maxillary first molars in both a horizontal parallel direction and a 30 degree obliquely downward direction to the functional occlusal plane. The nasomaxillary complex showed a forward displacement with upward and forward rotation in a horizontal protraction case, whereas a downward force produced almost translatory repositioning of the complex in an anterior direction. High stress levels were observed in the nasomaxillary complex and its surrounding structures. However, the pattern of stress distributions within the complex was different in two force systems. A downward protraction force produced relatively uniform stress distributions, indicating the importance of the force direction in determining the stress distributions from various orthopedic forces.
本研究旨在运用三维有限元法(FEM)研究上颌前牵引矫形力对颅面复合体的生物力学效应。三维有限元模型是基于一个年轻人类的干燥颅骨建立的。该模型由2918个节点和1776个实体单元组成。模型中整合了18个颅面缝合系统。在水平平行方向以及与功能咬合平面呈30度斜向下的方向上,对上颌第一磨牙的颊面施加1.0千克向前的力。在水平前牵引情况下,鼻上颌复合体向前移位并伴有向上和向前的旋转,而向下的力则使该复合体在前方向上几乎产生平移复位。在鼻上颌复合体及其周围结构中观察到高应力水平。然而,在两种力系统中,该复合体内的应力分布模式有所不同。向下的前牵引力产生相对均匀的应力分布,表明力的方向在确定各种矫形力的应力分布方面具有重要性。