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The use of finite element analysis to model bone-implant contact with basal implants.

机译:使用有限元分析来模拟骨植入物与基础植入物的接触。

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OBJECTIVE: The purpose of this study was to develop a model that accurately represents the interface between bone and basal implants throughout the healing process. STUDY DESIGN: The model was applied to the biological scenario of changing load distribution in a basal implant system over time. We did this through finite element analysis (FEA, or finite element method [FEM]), using multiple models with changing bone-implant contact definitions, which reflected the dynamic nature of the interface throughout the bony healing process. RESULTS: In the simple models, peak von Mises stresses decreased as the bone-implant-contact definition was changed from extremely soft contact (i.e., immature bone during early loading) to hard contact (i.e., mature bone). In upgraded models, which more closely approximate the biological scenario with basal dental implant, peak von Mises stresses decreased at the implant interface; however, they increased at the bone interface as a harder contact definition was modeled. Further, we found a shift in peak stress location within the implants during different contact definitions (i.e., different stages of bony healing). In the case of hard contact, the peak stress occurs above the contact surface, whereas in soft contact, the stress peak occurs in the upper part of the contact area between bone and the vertical shaft of the implant. Only in the extreme soft contact definitions were the peak stresses found near the base plate of the implant. CONCLUSION: Future FEM studies evaluating the functional role of dental implants should consider a similar model that takes into account bone tissue adaptations over time.
机译:目的:本研究的目的是建立一个能够在整个愈合过程中准确表示骨骼与基底植入物之间界面的模型。研究设计:该模型被应用于随着时间改变基础植入系统中负荷分布的生物学场景。我们通过有限元分析(FEA或有限元方法[FEM]),使用具有变化的骨-植入物接触定义的多个模型来做到这一点,该模型反映了整个骨愈合过程中界面的动态性质。结果:在简单模型中,随着骨骼与种植体的接触定义从极软的接触(即早期加载过程中的未成熟骨)变为硬接触(即成熟的骨),峰值von Mises应力降低了。在升级的模型中,该模型更接近于基牙种植体的生物学情况,在种植体界面处的峰值冯·米塞斯应力降低;但是,由于对较难的接触定义进行了建模,因此它们在骨骼界面处增加。此外,我们发现在不同的接触定义(即骨愈合的不同阶段)期间,植入物内的峰值应力位置发生了变化。在硬接触的情况下,峰值应力出现在接触表面上方,而在软接触的情况下,应力峰值出现在骨骼与植入物垂直轴之间的接触区域的上部。仅在极端柔软的接触定义中,才在植入物的基板附近发现峰值应力。结论:未来的FEM研究评估牙种植体的功能性作用时,应考虑一个类似的模型,该模型考虑了随时间推移的骨组织适应性。

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