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Biomechanical behavior of cavity design on teeth restored using ceramic inlays: An approach based on three-dimensional finite element analysis and ultrahigh-speed camera

机译:利用陶瓷镶嵌恢复牙齿设计的生物力学行为:一种基于三维有限元分析和超高速相机的方法

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Ceramic fracture and debonding are the primary failures that follow ceramic inlay and can lead to stress and tooth fracture. In this study, we examined two designs concave and flat of the gingival cavity bottom for tooth cavities restored using ceramic inlays. We investigated the biomechanical behavior of ceramic inlay-restored teeth (concave and flat) through three-dimensional finite element analysis (FEA) and experimentally validated the results using an ultrahigh-speed camera. We conducted in vitro real-time recording of the deformation of a restored tooth during loading using an ultrahigh-speed camera. This technique enables further image registration to observe deformation variation and vector fields. The deformation vector fields revealed that the concave design moved the deformation toward the buccal side of the cavity bottom, whereas the flat design moved it toward the palatal side. These findings correlated with the FEA results, which indicated that the concave design constrained stress in the dentin cavity and relieved palatal stress. Our results suggest that incorporating a concave design in cavity preparation can improve the fracture resistance of ceramic inlay-restored teeth, preventing unrestorable fractures. The current study is the first to utilize an ultrahigh-speed camera in dental biomechanics, and such cameras are useful for nondestructive and dynamic analysis.
机译:陶瓷骨折和剥离是涉及陶瓷嵌体的主要故障,可以导致应力和牙齿骨折。在这项研究中,我们检查了使用陶瓷嵌体恢复的牙齿腔的两个设计凹入和平坦的牙龈腔。通过三维有限元分析(FEA)调查了陶瓷镶嵌牙齿(凹入和平坦)的生物力学行为,并通过超高速相机通过实验验证结果。我们使用超高速相机在装载过程中进行了体外记录恢复牙齿的变形。该技术使得进一步的图像配准可以观察变形变形和矢量场。变形矢量字段显示凹面设计使变形朝向腔底的颊侧移动,而平面设计将其朝向腭侧移动。这些发现与FEA结果相关,这表明凹形设计在牙本质腔中的应力和缓解了腭胁迫。我们的研究结果表明,腔室制剂中的凹面设计可以改善陶瓷嵌入牙齿的骨折性,防止骨折。目前的研究是第一个利用牙科生物力学中的超高速相机的研究,这种相机可用于非破坏性和动态分析。

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