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表面处理对即刻负载种植体中应力分布的影响——三维有限元分析。

Effect of surface treatment on stress distribution in immediately loaded dental implants--a 3D finite element analysis.

机构信息

Division of Biomechanics, Department of Mechanical Engineering, Sahand University of Technology, Tabriz, Iran.

The University of Sheffield, Academic Unit of Restorative Dentistry, The School of Clinical Dentistry, Claremont Crescent, Sheffield, UK.

出版信息

Dent Mater. 2014 Apr;30(4):e89-97. doi: 10.1016/j.dental.2014.01.012. Epub 2014 Feb 18.

Abstract

OBJECTIVE

To investigate, by means of FE analysis, the effect of surface roughness treatments on the distribution of stresses at the bone-implant interface in immediately loaded mandibular implants.

MATERIALS AND METHODS

An accurate, high resolution, digital replica model of bone structure (cortical and trabecular components) supporting an implant was created using CT scan data and image processing software (Mimics 13.1; Materialize, Leuven, Belgium). An anatomically accurate 3D model of a mandibular-implant complex was created using a professional 3D-CAD modeller (SolidWorks, DassaultSystèmes Solid Works Corp; 2011). Finite element models were created with one of the four roughness treatments on the implant fixture surface. Of these, three were surface treated to create a uniform coating determined by the coefficient of friction (μ); these were either (1) plasma sprayed or porous-beaded (μ=1.0), (2) sandblasted (μ=0.68) or (3) polished (μ=0.4). The fourth implant had a novel two-part surface roughness consisting of a coronal polished component (μ=0.4) interfacing with the cortical bone, and a body plasma treated surface component (μ=1) interfacing with the trabecular bone. Finite element stress analysis was carried out under vertical and lateral forces.

RESULTS

This investigation showed that the type of surface treatment on the implant fixture affects the stress at the bone-implant interface of an immediately loaded implant complex. Von Mises stress data showed that the two-part surface treatment created the better stress distribution at the implant-bone interface.

SIGNIFICANCE

The results from this FE computational analysis suggest that the proposed two-part surface treatment for IL implants creates lower stresses than single uniform treatments at the bone-implant interface, which might decrease peri-implant bone loss. Future investigations should focus on mechanical and clinical validation of these FE results.

摘要

目的

通过有限元分析(FE 分析)研究表面粗糙度处理对下颌即刻负载种植体骨-种植体界面处应力分布的影响。

材料与方法

使用 CT 扫描数据和图像处理软件(Mimics 13.1;比利时 Materialize)创建了具有骨结构(皮质和小梁成分)的精确、高分辨率、数字复制模型,以支持植入物。使用专业的 3D-CAD 建模器(SolidWorks, DassaultSystèmes Solid Works Corp;2011)创建了具有解剖学准确性的下颌植入物复合体 3D 模型。通过在种植体固定器表面进行四种粗糙度处理中的一种来创建有限元模型。其中三种表面经过处理以创建由摩擦系数(μ)确定的均匀涂层;这些处理分别是(1)等离子喷涂或多孔珠(μ=1.0),(2)喷砂(μ=0.68)或(3)抛光(μ=0.4)。第四种植入物具有新颖的两部分表面粗糙度,由与皮质骨界面的冠状抛光部分(μ=0.4)和与小梁骨界面的主体等离子处理表面部分(μ=1)组成。在垂直和侧向力下进行有限元应力分析。

结果

本研究表明,种植体固定器表面的处理类型会影响即刻负载植入物复合体的骨-种植体界面处的应力。冯·米塞斯(Von Mises)应力数据表明,两部分表面处理在种植体-骨界面处产生了更好的应力分布。

意义

这些 FE 计算分析的结果表明,与单一致密处理相比,提出的 IL 植入物的两部分表面处理在骨-种植体界面处产生的应力更低,这可能会减少种植体周围的骨丢失。未来的研究应侧重于这些 FE 结果的机械和临床验证。

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