OMFS-IMPATH Research Group, Department of Imaging and Pathology, Faculty of Medicine, Leuven, Belgium; Department of Oral and Maxillofacial Surgery, University Hospitals Leuven, Leuven, Belgium; Division of Periodontology and Oral Microbiology, Department of Oral Health Sciences, KU Leuven, Leuven, Belgium.
Department of Odontology, Faculty of Medicine, Umeå Universitet, Umeå, Sweden.
J Dent. 2024 Nov;150:105348. doi: 10.1016/j.jdent.2024.105348. Epub 2024 Sep 5.
This article reviews the applications of Finite Element Models (FEMs) in personalized dentistry, focusing on treatment planning, material selection, and CAD-CAM processes. It also discusses the challenges and future directions of using finite element analysis (FEA) in dental care.
This study synthesizes current literature and case studies on FEMs in personalized dentistry, analyzing research articles, clinical reports, and technical papers on the application of FEA in dental biomechanics.
Sources for this review include peer-reviewed journals, academic publications, clinical case studies, and technical papers on dental biomechanics and finite element analysis. Key databases such as PubMed, Scopus, Embase, and ArXiv were used to identify relevant studies.
Studies were selected based on their relevance to the application of FEMs in personalized dentistry. Inclusion criteria were studies that discussed the use of FEA in treatment planning, material selection, and CAD-CAM processes in dentistry. Exclusion criteria included studies that did not focus on personalized dental treatments or did not utilize FEMs as a primary tool.
FEMs are essential for personalized dentistry, offering a versatile platform for in-silico dental biomechanics modeling. They can help predict biomechanical behavior, optimize treatment outcomes, and minimize clinical complications. Despite needing further advancements, FEMs could help significantly enhance treatment precision and efficacy in personalized dental care.
FEMs in personalized dentistry hold the potential to significantly improve treatment precision and efficacy, optimizing outcomes and reducing complications. Their integration underscores the need for interdisciplinary collaboration and advancements in computational techniques to enhance personalized dental care.
本文综述了有限元模型(FEM)在个性化牙科中的应用,重点介绍了治疗计划、材料选择和 CAD-CAM 流程。还讨论了在牙科护理中使用有限元分析(FEA)的挑战和未来方向。
本研究综合了个性化牙科中 FEM 的现有文献和案例研究,分析了关于 FEA 在牙科生物力学中应用的研究文章、临床报告和技术论文。
本综述的来源包括同行评议期刊、学术出版物、临床案例研究以及关于牙科生物力学和有限元分析的技术论文。使用 PubMed、Scopus、Embase 和 ArXiv 等主要数据库来确定相关研究。
根据 FEM 在个性化牙科中的应用相关性选择研究。纳入标准为讨论 FEA 在治疗计划、材料选择和 CAD-CAM 流程中在牙科中的应用的研究。排除标准包括不关注个性化牙科治疗或不将 FEM 作为主要工具的研究。
FEM 对个性化牙科至关重要,为牙科生物力学的计算机模拟提供了一个多功能平台。它们有助于预测生物力学行为、优化治疗效果并最小化临床并发症。尽管需要进一步发展,但 FEM 可以帮助显著提高个性化牙科护理的治疗精度和效果。
个性化牙科中的 FEM 有可能显著提高治疗精度和效果,优化结果并减少并发症。它们的整合突显了需要跨学科合作和计算技术的进步,以增强个性化牙科护理。