Three-dimensional finite element analysis of the biomechanical properties of different material implants for replacing missing teeth.

IF 1.9 3区 医学 Q2 DENTISTRY, ORAL SURGERY & MEDICINE
Odontology Pub Date : 2025-01-01 Epub Date: 2024-05-08 DOI:10.1007/s10266-024-00942-0
Yichen Gao, Xianyi He, Wei Xu, Yuyao Deng, Zhaoxin Xia, Junliang Chen, Yun He
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Abstract

The purpose of this study was to analyze the biomechanical properties of implants made of different materials to replace missing teeth by using three-dimensional finite element analysis and provide a theoretic basis for clinical application. CBCT data was imported into the Mimics and 3-Matic to construct the three-dimensional finite element model of a missing tooth restored by an implant. Then, the model was imported into the Marc Mentat. Based on the variations of the implant materials (titanium, titanium-zirconia, zirconia and poly (ether-ether-ketone) (PEEK)) and bone densities (high and low), a total of eight models were created. An axial load of 150 N was applied to the crown of the implant to simulate the actual occlusal situation. Both the maximum values of stresses in the cortical bone and implant were observed in the Zr-low model. The maximum displacements of the implants were also within the normal range except for the PEEK models. The cancellous bone strains were mainly distributed in the apical area of the implant, and the maximum value (3225 μstrain) was found in PEEK-low model. Under the premise of the same implant material, the relevant data from various indices in low-density bone models were larger than that in high-density bone models. From the biomechanical point of view, zirconia, titanium and titanium-zirconia were all acceptable implant materials for replacing missing teeth and possessed excellent mechanical properties, while the application of PEEK material needs to be further optimized and modified.

Abstract Image

对用于替代缺失牙齿的不同材料植入体的生物力学特性进行三维有限元分析。
本研究的目的是通过三维有限元分析,分析不同材料制成的种植体修复缺失牙的生物力学特性,为临床应用提供理论依据。将 CBCT 数据导入 Mimics 和 3-Matic,构建种植体修复缺失牙的三维有限元模型。然后,将模型导入 Marc Mentat。根据种植体材料(钛、钛-氧化锆、氧化锆和聚(醚-酮)(PEEK))和骨密度(高和低)的不同,共创建了八个模型。为模拟实际咬合情况,对种植体的牙冠施加了 150 N 的轴向负荷。皮质骨和种植体的最大应力值均出现在低锆密度模型中。除 PEEK 模型外,种植体的最大位移也在正常范围内。松质骨应变主要分布在种植体的顶端区域,最大值(3225 μ应变)出现在 PEEK 低模型中。在相同种植体材料的前提下,低密度骨模型的各项指标相关数据均大于高密度骨模型。从生物力学角度来看,氧化锆、钛和钛-氧化锆都是可以接受的缺牙替代种植材料,具有良好的力学性能,而 PEEK 材料的应用还需要进一步优化和改进。
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来源期刊
Odontology
Odontology 医学-牙科与口腔外科
CiteScore
5.30
自引率
4.00%
发文量
91
审稿时长
>12 weeks
期刊介绍: The Journal Odontology covers all disciplines involved in the fields of dentistry and craniofacial research, including molecular studies related to oral health and disease. Peer-reviewed articles cover topics ranging from research on human dental pulp, to comparisons of analgesics in surgery, to analysis of biofilm properties of dental plaque.
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