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种植体牙科中平台转换的生物力学效应:三维有限元分析。

Biomechanical effect of platform switching in implant dentistry: a three-dimensional finite element analysis.

机构信息

Department of Dentistry, National Yang-Ming University, Tapei, Taiwan.

出版信息

Int J Oral Maxillofac Implants. 2010 Mar-Apr;25(2):295-304.

Abstract

PURPOSE

The purpose of this study was to analyze and compare the implant-bone interface stresses in anisotropic three-dimensional finite element models of an osseointegrated implant with platform switching and a conventional matching-diameter implant platform and abutment in the posterior maxilla.

MATERIALS AND METHODS

Three-dimensional finite element models were created of a first molar section of the maxilla and embedded with a single endosseous implant (4.1 3 10 mm). One model simulated a 4.1-mm-diameter abutment connection and the other was a narrower 3.4-mm-diameter abutment connection, ie, simulating a platform-switching configuration. A gold alloy crown with 2-mm occlusal thickness was applied over the titanium abutment. Material properties of compact and cancellous bone were modeled as fully orthotropic and transversely isotropic, respectively. Oblique (200-N vertical and 40-N horizontal) occlusal loads were applied and perfect bonding was assumed at all interfaces.

RESULTS

Maximum von Mises, compressive, and tensile stresses in compact bone were lower in the platform-switching model than in the conventional model. However, the maximum von Mises stress in cancellous bone was higher in the platform-switching model than in the conventional model.

CONCLUSION

The platform-switching technique reduced the stress concentration in the area of compact bone and shifted it to the area of cancellous bone during oblique loading.

摘要

目的

本研究旨在分析和比较种植体-骨界面在具有平台转换的各向异性三维有限元模型和传统匹配直径种植体平台及后上颌骨基台中的骨整合种植体中的骨界面应力。

材料和方法

建立了上颌第一磨牙节段的三维有限元模型,并嵌入了单个骨内种植体(4.1×10mm)。一个模型模拟了直径为 4.1mm 的基台连接,另一个模型模拟了直径为 3.4mm 的较窄基台连接,即模拟了平台转换配置。在钛基台上覆盖了一个具有 2mm 咬合厚度的金合金冠。密质骨和松质骨的材料性能分别被模拟为全各向异性和横观各向同性。施加了斜向(200-N 垂直和 40-N 水平)的咬合载荷,并假设所有界面均完全粘结。

结果

在平台转换模型中,密质骨中的最大 von Mises、压缩和拉伸应力均低于传统模型。然而,在平台转换模型中,松质骨中的最大 von Mises 应力高于传统模型。

结论

平台转换技术减少了斜向加载时密质骨区域的应力集中,并将其转移到松质骨区域。

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