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Teeth: Among Nature's Most Durable Biocomposites

机译:牙齿:自然界中最持久的生物复合材料之一

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This paper addresses the durability of natural teeth from a materials perspective. Teeth are depicted as smart biocomposites, highly resistant to cumulative deformation and fracture. Favorable morphological features of teeth at both macroscopic and microscopic levels contribute to an innate damage tolerance. Damage modes are activated readily within the brittle enamel coat but are contained from spreading catastrophically into the vulnerable tooth interior in sustained occlusal loading. Although tooth enamel contains a multitude of microstructural defects that can act as sources of fracture, substantial overloads are required to drive any developing cracks to ultimate failure-nature's strategy is to contain damage rather than avoid it. Tests on model glass-shell systems simulating the basic elements of the tooth enamel/dentin layer structure help to identify important damage modes. Fracture and deformation mechanics provide a basis for analyzing critical conditions for each mode, in terms of characteristic tooth dimensions and materials properties. Comparative tests on extracted human and animal teeth confirm the validity of the model test approach and point to new research directions. Implications in biomechanics, especially as they relate to dentistry and anthropology, are outlined.
机译:本文从材料的角度探讨了天然牙齿的耐用性。牙齿被描述为智能生物复合材料,对累积变形和断裂具有高度抵抗力。在宏观和微观两个层面上,牙齿的良好形态特征有助于固有的损伤耐受性。损坏模式在脆性搪瓷涂层中很容易被激活,但是在持续的咬合负荷下,其破坏性地扩散到脆弱的牙齿内部。尽管牙釉质包含许多微结构缺陷,可作为破裂源,但仍需要大量过载才能将任何正在发展的裂纹驱动至最终失效,自然的策略是控制损坏而不是避免损坏。在模拟牙釉质/牙本质层结构基本元素的模型玻璃壳系统上进行的测试有助于确定重要的损坏模式。断裂和变形力学为分析每种模式的关键条件(根据齿的特征尺寸和材料特性)提供了基础。对提取的人和动物牙齿的比较测试证实了模型测试方法的有效性,并指出了新的研究方向。概述了生物力学的意义,尤其是与牙科和人类学有关的意义。

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