Department of Anthropology, Washington University in St Louis, St Louis, MO 63013, USA.
Paleo-Research Institute, University of Johannesburg, Auckland Park, Gauteng 2092, South Africa.
J R Soc Interface. 2023 Jun;20(203):20230195. doi: 10.1098/rsif.2023.0195. Epub 2023 Jun 28.
Teeth must fracture foods while avoiding being fractured themselves. This study evaluated dome biomechanical models used to describe tooth strength. Finite-element analysis (FEA) tested whether the predictions of the dome models applied to the complex geometry of an actual tooth. A finite-element model was built from microCT scans of a human M. The FEA included three loading regimes simulating contact between (i) a hard object and a single cusp tip, (ii) a hard object and all major cusp tips and (iii) a soft object and the entire occlusal basin. Our results corroborate the dome models with respect to the distribution and orientation of tensile stresses, but document heterogeneity of stress orientation across the lateral enamel. This implies that high stresses might not cause fractures to fully propagate between cusp tip and cervix under certain loading conditions. The crown is most at risk of failing during hard object biting on a single cusp. Geometrically simple biomechanical models are valuable tools for understanding tooth function but do not fully capture aspects of biomechanical performance in actual teeth whose complex geometries may reflect adaptations for strength.
牙齿必须在咀嚼食物的同时避免自身断裂。本研究评估了用于描述牙齿强度的牙顶生物力学模型。有限元分析(FEA)测试了牙顶模型的预测是否适用于实际牙齿的复杂几何形状。从人类磨牙的微 CT 扫描中建立了一个有限元模型。FEA 包括三种加载模式,模拟了(i)硬物体与单个牙尖顶的接触、(ii)硬物体与所有主要牙尖顶的接触以及(iii)软物体与整个咬合面的接触。我们的结果在拉伸应力的分布和方向上与牙顶模型一致,但记录了侧向釉质内应力方向的异质性。这意味着在某些加载条件下,高应力可能不会导致牙尖顶和牙颈部之间的裂缝完全扩展。在硬物体单牙咀嚼时,牙冠最容易失效。几何形状简单的生物力学模型是理解牙齿功能的有价值工具,但不能完全捕捉实际牙齿生物力学性能的各个方面,实际牙齿的复杂几何形状可能反映了对强度的适应。