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Virtual experiments physical validation: dental morphology at the intersection of experiment and theory

机译:虚拟实验物理验证:实验和理论交汇处的牙齿形态

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摘要

Computational models such as finite-element analysis offer biologists a means of exploring the structural mechanics of biological systems that cannot be directly observed. Validated against experimental data, a model can be manipulated to perform virtual experiments, testing variables that are hard to control in physical experiments. The relationship between tooth form and the ability to break down prey is key to understanding the evolution of dentition. Recent experimental work has quantified how tooth shape promotes fracture in biological materials. We present a validated finite-element model derived from physical compression experiments. The model shows close agreement with strain patterns observed in photoelastic test materials and reaction forces measured during these experiments. We use the model to measure strain energy within the test material when different tooth shapes are used. Results show that notched blades deform materials for less strain energy cost than straight blades, giving insights into the energetic relationship between tooth form and prey materials. We identify a hypothetical ‘optimal’ blade angle that minimizes strain energy costs and test alternative prey materials via virtual experiments. Using experimental data and computational models offers an integrative approach to understand the mechanics of tooth morphology.
机译:诸如有限元分析之类的计算模型为生物学家提供了探索无法直接观察到的生物系统结构力学的手段。根据实验数据进行验证,可以对模型进行操作以执行虚拟实验,从而测试在物理实验中难以控制的变量。牙齿形状和分解猎物的能力之间的关系是理解牙列进化的关键。最近的实验工作已经量化了牙齿形状如何促进生物材料的破裂。我们提出了从物理压缩实验得出的经过验证的有限元模型。该模型显示出与在光弹性测试材料中观察到的应变模式以及在这些实验中测得的反作用力紧密一致。当使用不同的牙齿形状时,我们使用该模型来测量测试材料内的应变能。结果表明,带锯齿的叶片使材料变形的应力能量成本低于直叶片,从而深入了解了齿形与猎物之间的能量关系。我们确定了一个假设的“最佳”叶片角度,该角度可最大程度地降低应变能成本,并通过虚拟实验测试替代猎物的材料。使用实验数据和计算模型提供了一种综合的方法来了解牙齿形态的机理。

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