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Finite element analysis on internal hexagonal and internal conical abutment

机译:内六角和内圆锥基台的有限元分析

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Implant-abutment connection plays an important role in the long-term success of dental implant. It should be able to resist bacterial leakage. Colonization of bacterial in microgaps along implant-abutment interfaces will lead to inflammatory reaction. One of the factor which have been identified to produce microgaps is micromotion. This study was conducted to analyse micromotion and stress distribution on mating surface of internal conical and internal hexagonal implant-abutment connections. Three dimensional (3D) model of mandible around the first molar was reconstructed from two dimensional (2D) CT data scan. The reconstructed 3D model includes a layer of cortical bone, cancellous bone, mucosa, prosthesis of first molar and adjacent teeth. Dental implant body and two-piece abutment with different implant-abutment connection were designed and inserted separately to simulate the replacement of the first molar. Axial load were applied on the top centre of the prosthesis and on the adjacent teeth to simulate occlusal force. Micromotion was observed to be lower around internal hexagonal abutments compared to internal conical. However, internal hexagonal connection produce stress concentration at its vertices, thus increase the possibility to be fractured.
机译:种植体-基台连接在牙科种植体的长期成功中起着重要作用。它应该能够抵抗细菌泄漏。沿种植体-基台界面的微小间隙中细菌的定植将导致炎症反应。已经确定产生微间隙的因素之一是微运动。进行这项研究以分析内部圆锥形和内部六角形种植体-基台连接的配合表面上的微动和应力分布。通过二维(2D)CT数据扫描重建了第一磨牙周围的下颌骨的三维(3D)模型。重建的3D模型包括一层皮质骨,松质骨,粘膜,第一磨牙和邻近牙齿的假体。设计并分别插入牙科种植体和具有不同种植体-基台连接的两件式基台,以模拟第一磨牙的替换。在假体的顶部中心和相邻牙齿上施加轴向载荷以模拟咬合力。与内部圆锥形相比,观察到内部六角形基台周围的微动运动较低。但是,内部六角形连接在其顶点处产生应力集中,因此增加了断裂的可能性。

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