[Study of internal reaction on the maxilla by orthopedic force].

Shika gakuho. Dental science reports Pub Date : 1989-08-01
H Katada
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Abstract

For the purpose of analyzing deformations and movements in the maxilla loaded by orthopedic force to the maxillary first molar, a three dimensional finite element model of the maxilla was constructed. For modelling of the maxilla, the right side of an adult Indian skull was used. Constructed model was composed of 1,108 solid elements and 1,195 nodes. Materials of this model was composed of compact bone, cancellous bone, teeth and sutures. Constraint condition was fixed adjacent bone side surrounded by sutures. Load was directed from upward to downward 30 degree, changing every 30 degree reference to occlusal plane. Volume of load were weighed at 1 kg for each directions. Results 1. At upward load, stress was transmitted through the lateral wall of the maxillary sinus. The posterior portion of the maxilla was displaced more upward than anterior. Each process of the maxilla and the maxillary sinus was deformed, however, there was no stress on the orbitary surface. 2. At upward 60 degree load, the maxilla was compressed simply to the direction of load. At the upward 30 degree load, it was compressed backward-downward and rotated clockwise together with bending. 3. At backward load, the maxilla was moved backward and rotated clockwise. At downward 30 degree load, the maxilla was moved backward-downward and rotated clockwise. Both loads bended anterior portion of the maxilla and compressed posterior portion. The center of rotation or bending fell on the line joining the frontal process and the zygomatic process. 4. Of all five directions, backward load showed the maximum value of displacement and upward showed the minimum. Concerning with the absolute value of principal stress, backward load showed the maximum and upward 60 degree load showed the minimum. 5. Concerning with the principal stress value of sutures, compressive stress were distributed equally at upward load. However, as the load went to downward direction, it caused stress concentration. Especially, compressive stress in the pterygopalatine suture and transverse palatine suture, extensive stress in the midpalatal suture were especially great.

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矫形力对上颌骨内反作用力的研究
为了分析上颌第一磨牙在矫形力作用下上颌的变形和运动,建立了上颌三维有限元模型。对于上颌骨的建模,使用了一个成年印第安人头骨的右侧。构建的模型由1108个实体元素和1195个节点组成。该模型材料由致密骨、松质骨、牙齿和缝合线组成。约束条件固定相邻骨侧,用缝线包围。负载由上向下定向30度,每隔30度参考咬合面改变一次。每个方向的载重量为1公斤。结果1。在向上载荷下,应力通过上颌窦的侧壁传递。上颌骨的后部比前部更向上移位。上颌各突及上颌窦均有变形,但眶面无应力。2. 在上60度载荷下,上颌骨被简单地压缩到载荷方向。在向上30度载荷下,它被向后向下压缩,顺时针旋转并弯曲。3.后加载时,上颌骨向后移动,顺时针旋转。在向下30度负荷时,上颌骨向后向下移动,顺时针旋转。两种负荷均使上颌骨前部弯曲,后部受压。旋转或弯曲的中心落在额突和颧突的连接线上。4. 在五个方向上,反向荷载的位移最大,向上荷载的位移最小。就主应力绝对值而言,反向荷载最大,向上60度荷载最小。5. 考虑到缝线的主应力值,压应力在向上载荷下均匀分布。但是,当载荷向下时,会引起应力集中。其中翼腭缝合和腭横缝合处的压应力特别大,中腭缝合处的广泛应力特别大。
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