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利用逆向工程和选择性激光熔化技术设计与制造定制化牙科植入物。

Design and manufacture of customized dental implants by using reverse engineering and selective laser melting technology.

作者信息

Chen Jianyu, Zhang Zhiguang, Chen Xianshuai, Zhang Chunyu, Zhang Gong, Xu Zhewu

机构信息

Resident, Guanghua School of Stomatology, Hospital of Stomatology, Guangdong Provincial Key Laboratory of Stomatology, Sun Yat-sen University, Guangzhou, China.

Professor, Department of Oral and Maxillofacial Surgery, Guanghua School of Stomatology, Hospital of Stomatology, Sun Yat-sen University, Guangzhou, China.

出版信息

J Prosthet Dent. 2014 Nov;112(5):1088-95.e1. doi: 10.1016/j.prosdent.2014.04.026. Epub 2014 Jun 14.

Abstract

STATEMENT OF PROBLEM

Recently a new therapeutic concept of patient-specific implant dentistry has been advanced based on computer-aided design/computer-aided manufacturing technology. However, a comprehensive study of the design and 3-dimensional (3D) printing of the customized implants, their mechanical properties, and their biomechanical behavior is lacking.

PURPOSE

The purpose of this study was to evaluate the mechanical and biomechanical performance of a novel custom-made dental implant fabricated by the selective laser melting technique with simulation and in vitro experimental studies.

MATERIAL AND METHODS

Two types of customized implants were designed by using reverse engineering: a root-analog implant and a root-analog threaded implant. The titanium implants were printed layer by layer with the selective laser melting technique. The relative density, surface roughness, tensile properties, bend strength, and dimensional accuracy of the specimens were evaluated. Nonlinear and linear finite element analysis and experimental studies were used to investigate the stress distribution, micromotion, and primary stability of the implants.

RESULTS

Selective laser melting 3D printing technology was able to reproduce the customized implant designs and produce high density and strength and adequate dimensional accuracy. Better stress distribution and lower maximum micromotions were observed for the root-analog threaded implant model than for the root-analog implant model. In the experimental tests, the implant stability quotient and pull-out strength of the 2 types of implants indicated that better primary stability can be obtained with a root-analog threaded implant design.

CONCLUSIONS

Selective laser melting proved to be an efficient means of printing fully dense customized implants with high strength and sufficient dimensional accuracy. Adding the threaded characteristic to the customized root-analog threaded implant design maintained the approximate geometry of the natural root and exhibited better stress distribution and primary stability.

摘要

问题陈述

最近,基于计算机辅助设计/计算机辅助制造技术,提出了一种针对患者的种植义齿修复的新治疗理念。然而,对于定制种植体的设计、三维(3D)打印、其力学性能及其生物力学行为,仍缺乏全面的研究。

目的

本研究的目的是通过模拟和体外实验研究,评估采用选择性激光熔化技术制造的新型定制牙科种植体的力学和生物力学性能。

材料与方法

采用逆向工程设计了两种定制种植体:牙根模拟种植体和牙根模拟螺纹种植体。使用选择性激光熔化技术逐层打印钛种植体。评估了试样的相对密度、表面粗糙度、拉伸性能、弯曲强度和尺寸精度。采用非线性和线性有限元分析以及实验研究,来研究种植体的应力分布、微动和初始稳定性。

结果

选择性激光熔化3D打印技术能够再现定制种植体设计,并产生高密度、高强度和足够的尺寸精度。与牙根模拟种植体模型相比,牙根模拟螺纹种植体模型的应力分布更好,最大微动更低。在实验测试中,两种种植体的种植体稳定性商数和拔出强度表明,牙根模拟螺纹种植体设计可获得更好的初始稳定性。

结论

选择性激光熔化被证明是一种高效的方法,可打印出具有高强度和足够尺寸精度的全致密定制种植体。在定制的牙根模拟螺纹种植体设计中增加螺纹特征,保持了天然牙根的近似几何形状,并表现出更好的应力分布和初始稳定性。

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