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首页> 外文期刊>Advanced Functional Materials >Relations between shape, materials properties, and function in biological materials using laser speckle interferometry: In situ tooth deformation
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Relations between shape, materials properties, and function in biological materials using laser speckle interferometry: In situ tooth deformation

机译:使用激光散斑干涉术在生物材料中的形状,材料特性和功能之间的关系:原位牙齿变形

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摘要

The manner in which stiff biological objects, such as whole bones and teeth, deform under load can provide direct insight into their in vivo functions, while highlighting the relations between their structure and materials properties. A new approach for studying the mechanical functions of such objects, using as an example the crowns of human teeth, is developed. Tooth-crown deformation under a compressive load is determined in water using laser speckle interferometry. The deformation patterns are analyzed using a novel procedure that reveals the relative magnitudes of 3D displacements of the outer surface. Nanometer-scale deformations of natural teeth were compared to deformations of identical acrylic replicas, in order to differentiate between contributions of the structure-material properties from contributions of morphology. It is shown that human premolars deform in a manner that is largely controlled by shape; in natural teeth, the enamel cap appears to displace mainly as a rigid body, undergoing moderate deformation. These observations contribute to the understanding of whole-tooth performance under load. The approach for analyzing the deformation of loaded whole objects is directly applicable to the study of many stiff biological specimens, including comparisons between normal and altered (repaired or genetically modified) bones.
机译:刚性生物物体(例如整个骨骼和牙齿)在负载下变形的方式可以直接了解其体内功能,同时突出显示其结构与材料特性之间的关系。以人类牙齿的牙冠为例,开发了一种研究此类物体的机械功能的新方法。使用激光散斑干涉法在水中确定在压缩载荷下的牙冠变形。使用新颖的过程分析了变形模式,该过程揭示了外表面3D位移的相对大小。将天然牙齿的纳米级变形与相同的丙烯酸复制品的变形进行了比较,以区分结构材料特性的贡献与形态的贡献。结果表明,人的前磨牙以很大程度上受形状控制的方式变形。在天然牙齿中,牙釉质盖似乎主要以刚体的形式发生位移,并经历适度的变形。这些观察有助于理解负载下的全齿性能。用于分析加载的整个对象的变形的方法可直接应用于许多坚硬的生物学标本的研究,包括在正常骨骼和更改后的(修复或基因改造的)骨骼之间进行比较。

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