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一种带有有限元颞下颌关节的动态颌骨模型。

A Dynamic Jaw Model With a Finite-Element Temporomandibular Joint.

作者信息

Sagl Benedikt, Schmid-Schwap Martina, Piehslinger Eva, Kundi Michael, Stavness Ian

机构信息

Department of Prosthodontics, University Clinic of Dentistry, Medical University of Vienna, Vienna, Austria.

Institute of Environmental Health, Medical University of Vienna, Vienna, Austria.

出版信息

Front Physiol. 2019 Sep 13;10:1156. doi: 10.3389/fphys.2019.01156. eCollection 2019.

Abstract

The masticatory region is an important human motion system that is essential for basic human tasks like mastication, speech or swallowing. An association between temporomandibular disorders (TMDs) and high temporomandibular joint (TMJ) stress has been suggested, but joint force measurements are not feasible to directly test this assumption. Consequently, biomechanical computer simulation remains as one of a few means to investigate this complex system. To thoroughly examine orofacial biomechanics, we developed a novel, dynamic computer model of the masticatory system. The model combines a muscle driven rigid body model of the jaw region with a detailed finite element model (FEM) disk and elastic foundation (EF) articular cartilage. The model is validated using high-resolution MRI data for protrusion and opening that were collected from the same volunteer. Joint stresses for a clenching task as well as protrusive and opening movements are computed. Simulations resulted in mandibular positions as well as disk positions and shapes that agree well with the MRI data. The model computes reasonable disk stress patterns for dynamic tasks. Moreover, to the best of our knowledge this model presents the first ever contact model using a combination of EF layers and a FEM body, which results in a clear decrease in computation time. In conclusion, the presented model is a valuable tool for the investigation of the human TMJ and can potentially help in the future to increase the understanding of the masticatory system and the relationship between TMD and joint stress and to highlight potential therapeutic approaches for the restoration of orofacial function.

摘要

咀嚼区域是人体重要的运动系统,对于咀嚼、言语或吞咽等基本人类活动至关重要。颞下颌关节紊乱病(TMD)与颞下颌关节(TMJ)高应力之间的关联已被提出,但关节力测量无法直接验证这一假设。因此,生物力学计算机模拟仍是研究这个复杂系统的少数方法之一。为了全面研究口腔颌面生物力学,我们开发了一种新颖的咀嚼系统动态计算机模型。该模型将颌面部肌肉驱动的刚体模型与详细的有限元模型(FEM)盘和弹性基础(EF)关节软骨相结合。使用从同一志愿者收集的高分辨率MRI数据对前伸和开口动作进行模型验证。计算紧咬任务以及前伸和开口运动时的关节应力。模拟结果得出的下颌位置以及盘的位置和形状与MRI数据吻合良好。该模型计算出了动态任务合理的盘应力模式。此外,据我们所知,该模型首次提出了使用EF层和FEM体相结合的接触模型,从而显著减少了计算时间。总之,所提出的模型是研究人类颞下颌关节的宝贵工具,未来可能有助于增进对咀嚼系统的理解以及颞下颌关节紊乱病与关节应力之间的关系,并突出恢复口腔颌面功能的潜在治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d8f/6757193/3caa62df3876/fphys-10-01156-g001.jpg

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