Three-dimensional finite element analysis of the biomechanical behaviour of different dental implants under immediate loading during three masticatory cycles.

IF 3.4 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Heliyon Pub Date : 2024-06-06 eCollection Date: 2024-06-15 DOI:10.1016/j.heliyon.2024.e32616
Feng Yang, Dianbin Liu, Wenjie Yin, Changyong Yuan, Yiming Hu, Jiaqi Xu, Yunfan Yang, Jianteng Tang, Jiang Chen
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Abstract

The study aimed to evaluate the impact of varying modulus of elasticity (MOE) values of dental implants on the deformation and von Mises stress distribution in implant systems and peri-implant bone tissues under dynamic cyclic loading. The implant-bone interface was characterised as frictional contact, and the initial stress was induced using the interference fit method to effectively develop a finite element model for an immediately loaded implant-supported denture. Using the Ansys Workbench 2021 R2 software, an analysis was conducted to examine the deformation and von Mises stress experienced by the implant-supported dentures, peri-implant bone tissue, and implants under dynamic loading across three simulated masticatory cycles. These findings were subsequently evaluated through a comparative analysis. The suprastructures showed varying degrees of maximum deformation across zirconia (Zr), titanium (Ti), low-MOE-Ti, and polyetheretherketone (PEEK) implant systems, registering values of 103.1 μm, 125.68 μm, 169.52 μm, and 844.06 μm, respectively. The Zr implant system demonstrated the lowest values for both maximum deformation and von Mises stress (14.96 μm, 86.71 MPa) in cortical bone. As the MOE increased, the maximum deformation in cancellous bone decreased. The PEEK implant system exhibited the highest maximum von Mises stress (59.12 MPa), whereas the Ti implant system exhibited the lowest stress (22.48 MPa). Elevating the MOE resulted in reductions in both maximum deformation and maximum von Mises stress experienced by the implant. Based on this research, adjusting the MOE of the implant emerged as a viable approach to effectively modify the biomechanical characteristics of the implant system. The Zr implant system demonstrated the least maximum von Mises stress and deformation, presenting a more favourable quality for preserving the stability of the implant-bone interface under immediate loading.

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对不同牙科种植体在三个咀嚼周期的即时加载下的生物力学行为进行三维有限元分析。
该研究旨在评估牙科种植体的不同弹性模量(MOE)值在动态循环加载下对种植体系统和种植体周围骨组织的变形和 von Mises 应力分布的影响。种植体与骨界面的特征为摩擦接触,使用过盈配合法诱导初始应力,从而有效地建立了一个即时加载种植体支撑义齿的有限元模型。使用 Ansys Workbench 2021 R2 软件进行分析,检查种植义齿、种植体周围骨组织和种植体在三个模拟咀嚼周期的动态加载下的变形和 von Mises 应力。随后通过比较分析对这些结果进行了评估。氧化锆 (Zr)、钛 (Ti)、低 MOE-Ti 和聚醚醚酮 (PEEK) 种植体系统的上部结构出现了不同程度的最大变形,数值分别为 103.1 μm、125.68 μm、169.52 μm 和 844.06 μm。在皮质骨中,锆种植体系统的最大变形和冯米塞斯应力值(14.96 μm、86.71 MPa)都最低。随着 MOE 的增加,松质骨中的最大变形量减少。PEEK 种植体系统的最大 von Mises 应力最大(59.12 兆帕),而钛种植体系统的应力最小(22.48 兆帕)。提高 MOE 可以减少种植体的最大变形和最大 von Mises 应力。根据这项研究,调整种植体的 MOE 是有效改变种植体系统生物力学特性的一种可行方法。锆种植体系统的最大 Von Mises 应力和变形最小,在即时加载情况下更有利于保持种植体与骨界面的稳定性。
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来源期刊
Heliyon
Heliyon MULTIDISCIPLINARY SCIENCES-
CiteScore
4.50
自引率
2.50%
发文量
2793
期刊介绍: Heliyon is an all-science, open access journal that is part of the Cell Press family. Any paper reporting scientifically accurate and valuable research, which adheres to accepted ethical and scientific publishing standards, will be considered for publication. Our growing team of dedicated section editors, along with our in-house team, handle your paper and manage the publication process end-to-end, giving your research the editorial support it deserves.
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