口腔医学 ›› 2026, Vol. 46 ›› Issue (9): 696-702.doi: 10.13591/j.cnki.kqyx.2026.09.009

• 基础与临床研究 • 上一篇    下一篇

新生儿单侧完全性唇腭裂颅-上颌复合体及腭护板的三维有限元模型构建与分析

胡敏1, 蔡旻纯2, 王宇婷3, 范炜2, 王思雨4, 顾启慧2, 杨齐飞5, 倪晓宇6, 王震东2()   

  1. 1 南京医科大学盐城临床医学院, 盐城市第三人民医院口腔科, 江苏盐城 (224000)
    2 南京医科大学附属口腔医院正畸科, 江苏南京 (210029)
    3 南京医科大学附属口腔医院南苑门诊部, 江苏南京 (210029)
    4 南京中医药大学附属南京医院(南京市第二医院)口腔科, 江苏南京 (210003)
    5 西湖大学医学院附属杭州市第一人民医院口腔科, 浙江杭州 (310006)
    6 南京林业大学, 江苏南京 (210027)
  • 收稿日期:2026-02-04 出版日期:2026-09-28 发布日期:2026-09-20
  • 通讯作者: 王震东 E-mail:834628878@qq.com

Construction and analysis of a three-dimensional finite element model of the cranio-maxillary complex and palatal obturator in neonates with unilateral complete cleft lip and palate

HU Min1, CAI Minchun2, WANG Yuting3, FAN Wei2, WANG Siyu4, GU Qihui2, YANG Qifei5, NI Xiaoyu6, WANG Zhendong2()   

  1. Department of Stomatology, The Yancheng School of Clinical Medicine of Nanjing Medical University,Yancheng Third People’s Hospital, Yancheng 224000, China
  • Received:2026-02-04 Online:2026-09-28 Published:2026-09-20

摘要:

目的 构建单侧完全性唇腭裂(unilateral complete cleft lip and palate,UCCLP)新生儿颅-上颌复合体合并腭护板的三维有限元模型,并在此基础上分析不同牙槽裂隙关闭距离与腭护板厚度组合对牙槽黏膜应力分布及牙槽裂隙关闭效率的影响。方法 使用Mimics 18.2、Geomagic Wrap 2021及Ansys 19.0软件,基于多层螺旋CT(MDCT)数据,建立含有颅-上颌复合体、骨缝、牙龈及腭护板的三维有限元模型。建模过程中,骨缝、牙囊等关键解剖结构的几何形态参照既往文献进行准确构建。在保持模型几何、材料参数、边界条件与接触设定一致的前提下,设置不同牙槽骨裂隙关闭距离与腭护板厚度组合,计算牙槽黏膜最大von Mises等效应力与牙槽骨裂隙关闭效率,分析“厚度-位移”对“应力-效率”关系的调节规律。结果 基于MDCT数据及参考以往文献数据建立的UCCLP新生儿颅-上颌复合体合并腭护板的三维有限元模型效果理想,网格均匀,形态与患儿口内真实状况相似度高。牙槽骨裂隙关闭效率随腭护板厚度增加而提高。但腭护板厚度对牙槽黏膜最大von Mises等效应力的影响受牙槽裂隙关闭距离调控:较小的移动距离范围内,0.5 mm和1.5 mm组应力随腭护板厚度增加总体呈先下降后上升趋势;而1.0 mm组应力则表现为先增加、后下降再增加的波动变化;大位移(2.0 mm)条件下,应力则随厚度增加持续下降——提示厚度与位移之间存在权衡关系。结论 本研究成功构建了UCCLP新生儿颅-上颌复合体合并腭护板的三维有限元模型,可以为后续腭护板矫治UCCLP患儿牙槽移动的生物力学研究提供可靠模型基础。有限元分析表明:腭护板厚度与牙槽骨裂隙关闭距离对牙槽黏膜最大von Mises等效应力及牙槽裂隙关闭效率存在耦合效应。

关键词: 单侧完全性唇腭裂, MDCT建模, 有限元分析, 颅-上颌复合体, 腭护板

Abstract:

Objective To construct a three-dimensional finite element model of the cranio-maxillary complex combined with a palatal obturator in neonates with unilateral complete cleft lip and palate(UCCLP), and to evaluate the effects of different combinations of alveolar cleft closure distance and palatal obturator thickness on mucosal stress distribution and cleft closure efficiency. Methods Based on MDCT data, a three-dimensional finite element model incorporating the cranio-maxillary complex, cranial sutures, alveolar mucosa, and palatal obturator was established using Mimics 18.2, Geomagic Wrap 2021, and ANSYS 19.0. The geometries of key anatomical structures, including cranial sutures and dental germs, were reconstructed with reference to previous studies. Under consistent model geometry, material properties, boundary conditions, and contact settings, different combinations of alveolar cleft closure distance and palatal obturator thickness were simulated. The maximum von Mises stress in the alveolar mucosa and the cleft closure efficiency were calculated to analyze the regulatory relationship between thickness displacement parameters and stress efficiency outcomes. Results A patient-specific finite element model of the UCCLP neonatal cranio-maxillary complex with a palatal obturator was successfully established, demonstrating satisfactory mesh quality and good anatomical agreement with clinical morphology. The cleft closure efficiency increased with increasing palatal obturator thickness. However, the effect of palatal obturator thickness on the maximum von Mises stress in the alveolar mucosa was modulated by the magnitude of closure distance. Within a small range of movement distance, the stress in the 0.5 mm and 1.5 mm groups exhibited an overall trend of first decreasing and then increasing with increasing palatal obturator thickness, whereas the stress in the 1.0 mm group showed a fluctuating pattern of first increasing, then decreasing, and then increasing again. In contrast, under large displacement conditions, mucosal stress decreased continuously with increasing thickness, indicating a trade-off between thickness and displacement. Conclusion A three-dimensional finite element model of the UCCLP neonatal cranio-maxillary complex combined with a palatal obturator was successfully developed, providing a reliable computational framework for subsequent biomechanical investigations. The results suggest a coupled effect between palatal obturator thickness and alveolar cleft closure distance on the maximum von Mises stress in the alveolar mucosa and closure efficiency.

Key words: UCCLP, MDCT modeling, finite element analysis, cranio-maxillary complex, palatal obturator

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