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Numerical and Experimental Study of the Mechanical Response of Diatom Frustules

机译:硅藻壳力学响应的数值与实验研究

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摘要

Diatom frustules, with their hierarchical three-dimensional patterned silica structures at nano to micrometer dimensions, can be a paragon for the design of lightweight structural materials. However, the mechanical properties of frustules, especially the species with pennate symmetry, have not been studied systematically. A novel approach combining in situ micro-indentation and high-resolution X-ray computed tomography (XCT)-based finite element analysis (FEA) at the identical sample is developed and applied to frustule. Furthermore, scanning electron microscopy and transmission electron microscopy investigations are conducted to obtain detailed information regarding the resolvable structures and the composition. During the in situ micro-indentation studies of frustule, a mainly elastic deformation behavior with displacement discontinuitieson-linearities is observed. To extract material properties from obtained load-displacement curves in the elastic region, elastic finite element method (FEM) simulations are conducted. Young’s modulus is determined as 31.8 GPa. The method described in this paper allows understanding of the mechanical behavior of very complex structures.
机译:硅藻壳具有纳米级至微米级的分层三维图案化二氧化硅结构,可以作为轻型结构材料设计的典范。但是,对rust壳的机械特性,尤其是具有对称对称的物种,尚未进行系统的研究。结合原位微压痕和高分辨率X射线计算机断层扫描(XCT)的有限元分析(FEA)的一种新方法在同一个样品上被开发出来,并应用到了挫折中。此外,进行扫描电子显微镜和透射电子显微镜研究以获得关于可分辨结构和组成的详细信息。在壳的原位微压痕研究中,观察到主要是具有位移不连续/非线性的弹性变形行为。为了从弹性区域中获得的载荷-位移曲线提取材料特性,进行了弹性有限元方法(FEM)模拟。杨氏模量确定为31.8 GPa。本文介绍的方法可以帮助您了解非常复杂的结构的机械性能。

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