用四种不同类型的MARPE在面综合体上的应力分布和位移:一个三维有限元素分析
Veenita Gupta1, Priyank Rai1, Tulika Tripathi1
1Department of Orthodontics and Dentofacial Orthopaedics, Maulana Azad Institute of Dental Sciences, 110002 New Delhi, India.
International orthodontics
|September 30, 2023
概括
不同的快速 palatal 扩张 (MARPE) 迷你植入物设计影响面复杂应力和位移. 带有烯酸翅膀的双皮 anchorage 和 palatal 斜坡植入物提供了卓越的骨扩张和减少牙旋转.
科学领域:
- 矯正牙科 矯正牙科是一種矯正牙科.
- 头骨面部生物力学
- 牙科植入物学 牙科植入物学
背景情况:
- 微型植入器辅助快速口腔扩张器 (MARPE) 设计通过生物机械效应影响治疗结果.
- 了解压力分布和位移对于优化MARPE治疗至关重要.
研究的目的:
- 通过使用四种不同的MARPE器件设计,分析和比较面复合体中的应力分布和位移模式.
主要方法:
- 从CBCT数据开发出了面复合体的3D有限元素模型.
- 模拟了四个MARPE设计,在迷你植入物固定 (单皮层与双皮层) 和放置 (宫腔皮层,鼻腔皮层,宫腔斜坡,烯酸翅膀) 方面有所不同.
- 使用ANSYS软件评估了·米塞斯的应力和位移.
主要成果:
- 在所有设计中,大骨,骨,斜骨骨和中骨经历了最高的压力.
- 第2组 (双皮质固) 显示骨扩张比第1组 (单皮质) 大.
- 第4组 (带有烯酸翅膀的平板斜坡) 与第3组相比,显示出较少的牙旋转.
结论:
- 马尔佩器件会对中部,大,骨和前牙造成压力,导致面旋转.
- 在MARPE中双皮质定导致骨扩张的增强.
- 带有烯酸翅膀的面部斜坡植入物改善了骨扩张,并最大限度地减少了牙旋转.
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