Design and structural deformation assessment of three-dimensional printed dental implants by means of finite element analysis.

IF 1.8 4区 医学 Q4 ENGINEERING, BIOMEDICAL
Odin Ramirez-Fernandez, Iliana Duran-Gonzalez, Fabian Equihua-Guillen, Laura Castruita Avila, Emilio Camporredondo, Adrian Garcia-Lara, Esmeralda Zuñiga-Aguilar
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引用次数: 0

Abstract

BackgroundThe increasing demand for dental implants necessitates the exploration of advanced materials and manufacturing techniques. Three-dimensional (3D) printing has emerged as a viable method for producing custom dental implants, allowing for intricate designs and improved patient-specific fits. This study focuses on the design and structural deformation assessment of 3D-printed dental implants using Finite Element Analysis (FEA). By simulating the mechanical behavior of these implants under realistic loading conditions, we aim to evaluate their performance and predict potential failure points, ultimately enhancing their reliability and longevity in clinical applications.ObjectiveThe primary objective of this study is to conduct a comprehensive design and structural deformation assessment of three-dimensional (3D) printed dental implants using Finite Element Analysis (FEA). Specifically, the study aims to: Evaluate stress distribution and deformation patterns in three 3D-printed dental implant designs under simulated physiological loading.Compare the stiffness, strength, and elastic behavior of PEEK and CFR-PEEK under occlusal forces.Identify failure points in implants and bone-implant interfaces by analyzing high stress concentrations.Predict the biomechanical behavior of a novel dental implant by determining its elastic modulus through finite element analysis (FEA).MethodsThree models 3D were designed to understand stress distribution with different structures using PEEK as biomaterial, with 4 test conditions modeled and compared. An occlusal load was applied (230 N at 90˚ and 30˚) on the implants. Isotropic, linear elastic, and homogeneous were considerate as properties of the components.ResultsUnder axial loads, all models stayed within physiological stress limits, while under 30° oblique loading, Model 3 showed the lowest stress, strain, and pressure.ConclusionsFEA results indicate that 3D-printed dental implants, particularly the optimized Model 3, maintain safe stress levels under axial and oblique loads, supporting their potential for immediate loading. However, due to numerical limitations, experimental validation remains necessary to advance implant designs that optimize bone regeneration and material efficiency.

三维打印种植体的有限元设计及结构变形评估。
对种植体的需求不断增加,需要探索先进的材料和制造技术。三维(3D)打印已经成为一种可行的方法来生产定制牙种植体,允许复杂的设计和改进患者特定的配合。本研究的重点是利用有限元分析(FEA)对3d打印种植体的设计和结构变形进行评估。通过模拟这些植入物在真实载荷条件下的力学行为,我们旨在评估它们的性能并预测潜在的故障点,最终提高它们在临床应用中的可靠性和寿命。目的应用有限元分析(FEA)对三维打印种植体进行综合设计和结构变形评估。具体而言,该研究旨在:评估模拟生理载荷下三种3d打印牙科种植体设计的应力分布和变形模式。比较PEEK和CFR-PEEK在咬合力作用下的刚度、强度和弹性行为。通过分析高应力集中,确定种植体和骨-种植体界面的失效点。通过有限元分析(FEA)确定牙种植体的弹性模量,预测其生物力学行为。方法以PEEK为生物材料,设计3个三维模型,了解不同结构下的应力分布,并对4种试验条件进行建模和比较。在种植体上施加230 N(90˚和30˚)的咬合负荷。考虑了各向同性、线弹性和均匀性。结果在轴向载荷作用下,所有模型均保持在生理应力极限内,而在30°斜向载荷作用下,模型3的应力、应变和压力最低。结论3d打印种植体,特别是优化后的模型3,在轴向和斜向载荷下均能保持安全的应力水平,支持其立即加载的潜力。然而,由于数值限制,实验验证仍然是必要的,以推进种植体设计,优化骨再生和材料效率。
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来源期刊
Technology and Health Care
Technology and Health Care HEALTH CARE SCIENCES & SERVICES-ENGINEERING, BIOMEDICAL
CiteScore
2.10
自引率
6.20%
发文量
282
审稿时长
>12 weeks
期刊介绍: Technology and Health Care is intended to serve as a forum for the presentation of original articles and technical notes, observing rigorous scientific standards. Furthermore, upon invitation, reviews, tutorials, discussion papers and minisymposia are featured. The main focus of THC is related to the overlapping areas of engineering and medicine. The following types of contributions are considered: 1.Original articles: New concepts, procedures and devices associated with the use of technology in medical research and clinical practice are presented to a readership with a widespread background in engineering and/or medicine. In particular, the clinical benefit deriving from the application of engineering methods and devices in clinical medicine should be demonstrated. Typically, full length original contributions have a length of 4000 words, thereby taking duly into account figures and tables. 2.Technical Notes and Short Communications: Technical Notes relate to novel technical developments with relevance for clinical medicine. In Short Communications, clinical applications are shortly described. 3.Both Technical Notes and Short Communications typically have a length of 1500 words. Reviews and Tutorials (upon invitation only): Tutorial and educational articles for persons with a primarily medical background on principles of engineering with particular significance for biomedical applications and vice versa are presented. The Editorial Board is responsible for the selection of topics. 4.Minisymposia (upon invitation only): Under the leadership of a Special Editor, controversial or important issues relating to health care are highlighted and discussed by various authors. 5.Letters to the Editors: Discussions or short statements (not indexed).
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