Assistant professor, Department of Orthodontics and Dentofacial Orthopedics, Manipal College of Dental Sciences, Mangalore, India.
Professor, Department of Orthodontics and Dentofacial Orthopedics, Manipal College of Dental Sciences, Mangalore, India.
Am J Orthod Dentofacial Orthop. 2012 Mar;141(3):327-336. doi: 10.1016/j.ajodo.2011.07.022.
The aims of this study were to analyze the stress distribution and displacement patterns that develop in an orthodontic miniscrew implant and its surrounding osseous structures for 2 implant materials under horizontal and torsional loading, with no ossseointegration.
A numeric approach was adopted. The finite element method was used to determine the stress and displacement of the various components at a given time after miniscrew implant application, when, due to viscoelastic relaxation effects, the only remaining stress field was from the application of the orthodontic load.
Stress distribution was not significantly different between the 2 types of implant material. Increased stress values were located at the necks of the implants and the surrounding cortical bone. Bending of the titanium miniscrew was observed in the neck region under horizontal traction.
The differences between the values of stress and displacement we obtained for the 2 types of miniscrew were too small to be clinically significant. Optimization of the miniscrew implant composed of the titanium alloy might be achieved by increasing the bulk (quantity) of the material in the neck region. The miniscrew implant can be immediately loaded and used for group movement of teeth.
本研究旨在分析在无骨整合的情况下,两种种植体材料的正畸微螺钉种植体及其周围骨结构在水平和扭转加载下的应力分布和位移模式。
采用数值方法。有限元法用于确定微螺钉种植体应用后特定时间各种组件的应力和位移,此时,由于粘弹性松弛效应,仅剩余的应力场来自正畸负荷的应用。
两种种植体材料的应力分布没有显著差异。在植入物颈部和周围皮质骨处发现了较高的应力值。在水平牵引下,观察到钛微螺钉在颈部区域发生弯曲。
我们获得的两种微螺钉的应力和位移值之间的差异太小,临床意义不大。通过增加颈部区域材料的体积(数量),可以优化由钛合金组成的微螺钉植入物。微螺钉植入物可以立即加载并用于牙齿的整体移动。