Işeri H, Tekkaya A E, Oztan O, Bilgiç S
Department of Orthodontics, School of Dentistry, University of Ankara, Turkey.
Eur J Orthod. 1998 Aug;20(4):347-56. doi: 10.1093/ejo/20.4.347.
The aim of this study was to evaluate the biomechanical effect of rapid maxillary expansion (RME) on the craniofacial complex by using a three-dimensional finite element model (FEM) of the craniofacial skeleton. The construction of the three-dimensional FEM was based on computer tomography (CT) scans of the skull of a 12-year-old male subject. The CT pictures were digitized and converted to the finite element model by means of a procedure developed for the present study. The final mesh consisted of 2270 thick shell elements with 2120 nodes. The mechanical response in terms of displacement and von Mises stresses was determined by expanding the maxilla up to 5 mm on both sides. Viewed occlusally, the two halves of the maxilla were separated almost in a parallel manner during 1-, 3- and 5-mm expansions. The greatest widening was observed in the dento-alveolar areas, and gradually decreased through the superior structures. The width of the nasal cavity at the floor of the nose increased markedly. However, the postero-superior part of the nasal cavity was moved slightly medially. No displacement was observed in the parietal, frontal and occipital bones. High stress levels were observed in the canine and molar regions of the maxilla, lateral wall of the inferior nasal cavity, zygomatic and nasal bones, with the highest stress concentration at the pterygoid plates of the sphenoid bone in the region close to the cranial base.
本研究的目的是通过使用颅面骨骼的三维有限元模型(FEM)来评估快速上颌扩展(RME)对颅面复合体的生物力学影响。三维有限元模型的构建基于一名12岁男性受试者颅骨的计算机断层扫描(CT)图像。通过为本研究开发的程序将CT图像数字化并转换为有限元模型。最终网格由2270个厚壳单元和2120个节点组成。通过将上颌两侧扩展至5mm来确定位移和von Mises应力方面的力学响应。从咬合面观察,在1mm、3mm和5mm扩展过程中,上颌的两半几乎以平行方式分开。在牙槽区域观察到最大程度的增宽,并通过上部结构逐渐减小。鼻底鼻腔宽度明显增加。然而,鼻腔后上部稍向内侧移动。在顶骨、额骨和枕骨中未观察到位移。在上颌的犬齿和磨牙区域、下鼻腔侧壁、颧骨和鼻骨中观察到高应力水平,在靠近颅底区域的蝶骨翼突板处应力集中最高。