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2
Three-dimensional in vivo and finite element analyses of peri-implant bone remodeling after superstructure placement.
J Prosthet Dent. 2025 Jun;133(6):1535-1544. doi: 10.1016/j.prosdent.2025.01.015. Epub 2025 Feb 4.
3
Influence of different polymeric materials of implant and attachment on stress distribution in implant-supported overdentures: a three-dimensional finite element study.种植体及附着体不同聚合材料对种植体支持覆盖义齿应力分布的影响:一项三维有限元研究
BMC Oral Health. 2025 Jan 31;25(1):166. doi: 10.1186/s12903-025-05440-5.
4
The Effect of Different Abutment Designs and Materials on Stress Distribution in Implants and Peripheral Bones: A Three-Dimensional Finite Element Analysis.不同基台设计和材料对种植体及周边骨应力分布的影响:三维有限元分析
Cureus. 2024 Jul 18;16(7):e64871. doi: 10.7759/cureus.64871. eCollection 2024 Jul.
5
Three-dimensional finite element analysis of the biomechanical behaviour of different dental implants under immediate loading during three masticatory cycles.不同牙种植体在三个咀嚼周期即刻加载下生物力学行为的三维有限元分析
Heliyon. 2024 Jun 6;10(11):e32616. doi: 10.1016/j.heliyon.2024.e32616. eCollection 2024 Jun 15.
6
Biomechanical Effects of Titanium and Carbon Fiber- Reinforced PEEK as Dental Implant Materials: A Finite Element Analysis.钛及碳纤维增强聚醚醚酮作为牙种植体材料的生物力学效应:有限元分析
Int J Oral Maxillofac Implants. 2025 Feb 7;40(1):33-39. doi: 10.11607/jomi.10954.
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Dental implant and abutment in PEEK: stress assessment in single crown retainers on anterior region.PEEK 中的牙种植体和基台:前牙区单冠固位体的应力评估。
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Exploring the bio-mechanical behavior of PEEK and CFR-PEEK materials for dental implant applications using finite element analysis.使用有限元分析探索聚醚醚酮(PEEK)和碳纤维增强聚醚醚酮(CFR-PEEK)材料在牙科种植应用中的生物力学行为。
J Prosthodont Res. 2025 Jan 10;69(1):41-48. doi: 10.2186/jpr.JPR_D_23_00296. Epub 2024 May 22.
9
Three-dimensional finite element analysis of the biomechanical properties of different material implants for replacing missing teeth.不同材料种植牙修复缺失牙生物力学性能的三维有限元分析
Odontology. 2025 Jan;113(1):80-88. doi: 10.1007/s10266-024-00942-0. Epub 2024 May 8.
10
Biomechanical Fatigue Behavior of a Dental Implant Due to Chewing Forces: A Finite Element Analysis.咀嚼力作用下牙种植体的生物力学疲劳行为:有限元分析
Materials (Basel). 2024 Apr 5;17(7):1669. doi: 10.3390/ma17071669.

碳纤维增强聚醚醚酮(CF-PEEK)与钛牙科植入物:不同骨质量下的应力分布和疲劳性能

CF-PEEK vs. Titanium Dental Implants: Stress Distribution and Fatigue Performance in Variable Bone Qualities.

作者信息

Polat Sağsöz Nurdan, Murat Fahri, Sevinç Gül Sema Nur, Şensoy Abdullah Tahir, Kaymaz Irfan

机构信息

Faculty of Dentistry, Atatürk University, 25240 Erzurum, Turkey.

Department of Mechanical Engineering, Faculty of Engineering and Architecture, Erzurum Technical University, 25050 Erzurum, Turkey.

出版信息

Biomimetics (Basel). 2025 Sep 14;10(9):619. doi: 10.3390/biomimetics10090619.

DOI:10.3390/biomimetics10090619
PMID:41002853
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12467904/
Abstract

This study aims to evaluate the biomechanical behavior of titanium and carbon fiber-reinforced polyetheretherketone (CF-PEEK) dental implants under varying bone densities and loading conditions using finite element analysis (FEA). A single-tooth mandibular molar implant system was modeled, comprising titanium or CF-PEEK abutment and fixture, and surrounding bone structures with four configurations: (I) fully cortical bone, (II) 2 mm cortical layer with trabecular bone, (III) 1 mm cortical with high-density trabecular bone, and (IV) 1 mm cortical with low-density trabecular bone. Vertical and oblique static loads of 100 N were applied to simulate masticatory forces. FEA results revealed that titanium implants exhibited higher von Mises stress values in the implant and abutment under oblique loading, exceeding 400 MPa, while CF-PEEK components showed reduced stress but significantly higher strain levels. Cortical and trabecular bone surrounding CF-PEEK implants received more uniform stress distribution, potentially minimizing stress shielding effects. However, fatigue life analyses indicated that CF-PEEK abutment and screw components were more susceptible to mechanical failure under oblique loads, particularly in low-density bone models. In conclusion, CF-PEEK implants offer a more physiological load transfer to bone and reduced stress shielding compared to titanium. However, their structural reliability under complex loading, especially in low-quality bone conditions, requires careful consideration. These findings support the potential use of CF-PEEK in select clinical scenarios but highlight the need for further material and design optimization.

摘要

本研究旨在通过有限元分析(FEA)评估钛及碳纤维增强聚醚醚酮(CF-PEEK)牙种植体在不同骨密度和加载条件下的生物力学行为。建立了单颗下颌磨牙种植系统模型,包括钛或CF-PEEK基台和种植体,以及具有四种结构的周围骨结构:(I)全皮质骨,(II)2毫米皮质层加松质骨,(III)1毫米皮质加高密度松质骨,以及(IV)1毫米皮质加低密度松质骨。施加100 N的垂直和斜向静载荷以模拟咀嚼力。有限元分析结果显示,钛种植体在斜向加载下种植体和基台中的冯·米塞斯应力值较高,超过400 MPa,而CF-PEEK部件应力降低但应变水平显著更高。CF-PEEK种植体周围的皮质骨和松质骨应力分布更均匀,可能会使应力遮挡效应最小化。然而,疲劳寿命分析表明,CF-PEEK基台和螺钉部件在斜向载荷下更容易发生机械故障,尤其是在低密度骨模型中。总之,与钛相比,CF-PEEK种植体向骨组织传递的载荷更符合生理情况,应力遮挡更小。然而,其在复杂载荷下的结构可靠性,尤其是在低质量骨条件下,需要仔细考虑。这些发现支持了CF-PEEK在特定临床场景中的潜在应用,但也强调了进一步进行材料和设计优化的必要性。