Chi Chih-Wen, Chen Weng-Pin, Liu Wei-Ting, Lai Ting-Ju, Lin Chun-Pin
Department of Dentistry, National Taiwan University Hospital Hsin-Chu Branch, Hsinchu City, Taiwan.
Department of Mechanical Engineering, National Taipei University of Technology, Taipei City, Taiwan.
J Endod. 2025 Apr;51(4):507-513. doi: 10.1016/j.joen.2024.12.018. Epub 2024 Dec 30.
The separation of Nickel-Titanium (NiTi) endodontic instruments due to excessive torque adversely affects treatment outcomes. Previous studies have analyzed torque values under static conditions and failed to accurately simulate the dynamic conditions of instruments within root canals. This study aimed to apply a novel finite element analysis (FEA) to assess the real-time dynamic performance of NiTi endodontic instruments during operation in root canals.
In this study, three-dimensional geometric models of commercial NiTi endodontic instruments (ProTaper Universal) and simulated root canals were developed. In the first part, dynamic analyses of the instruments operating within root canals were simulated using finite element fracture theory and validated through experimental methods. To assess the consistency between the experimental results generated by different instruments (ProTaper Universal SX, S1, S2, and F1) and the FEA results, we utilized Bland-Altman plots for visualization and the Intraclass Correlation Coefficient for comparing continuous data. In the second part, the FEA was employed to establish a safe and efficient sequence for root canal shaping.
The findings indicated a similar trend between the analyzed and experimental groups. The Bland-Altman plot demonstrated a high level of consistency, with Intraclass Correlation Coefficient values ranging from 0.6407 to 0.9351. To evaluate the dynamic performance of commercial endodontic instruments in canals, the instruments experienced excessive torque values and significant loading. Based on torque control, new sequences for safe and effective root canal preparation were proposed.
FEA with failure mode was demonstrated to simulate the real-time dynamic performance of instruments working in the simulated canals. This assessment offers guidance for clinical protocols and the development of innovative instruments with improving safety and efficacy in endodontic treatments through computer-aided techniques.
镍钛(NiTi)根管器械因扭矩过大而分离会对治疗结果产生不利影响。以往的研究分析了静态条件下的扭矩值,未能准确模拟根管内器械的动态条件。本研究旨在应用一种新颖的有限元分析(FEA)来评估NiTi根管器械在根管操作过程中的实时动态性能。
在本研究中,建立了商用NiTi根管器械(ProTaper Universal)和模拟根管的三维几何模型。在第一部分中,使用有限元断裂理论模拟根管内器械的动态分析,并通过实验方法进行验证。为了评估不同器械(ProTaper Universal SX、S1、S2和F1)产生的实验结果与FEA结果之间的一致性,我们使用Bland-Altman图进行可视化,并使用组内相关系数来比较连续数据。在第二部分中,采用FEA建立安全有效的根管预备顺序。
研究结果表明分析组和实验组之间存在相似趋势。Bland-Altman图显示出高度一致性,组内相关系数值在0.6407至0.9351之间。为了评估商用根管器械在根管内的动态性能,这些器械经历了过大的扭矩值和显著的负荷。基于扭矩控制,提出了安全有效的根管预备新顺序。
具有失效模式的FEA被证明能够模拟在模拟根管中工作的器械的实时动态性能。这种评估为临床方案提供了指导,并通过计算机辅助技术开发具有更高安全性和有效性的创新器械,用于牙髓治疗。