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Damage Kinetics at the Sub-micrometric Scale in Bast Fibers Using Finite Element Simulation and High-Resolution X-Ray Micro-Tomography

机译:有限元模拟和高分辨率X射线显微断层摄影术在韧皮纤维亚微米级损伤动力学

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摘要

This study combines experimental testing and computation analysis to reveal the role of defects and sub-micrometric microstructure in tensile behavior of hemp bast fibers. In particular, these structural defects represent the footprint of the processes to which the fibers elements are subject along the whole transformation chain from the plant to the end use product. Tensile experiments performed on elementary fibers and bundles in a wide diameter range (40–200 μm) are simultaneously conducted with X-ray micro-tomography observation. 3D images of ultra-fine resolution (voxel size of 280 nm) are achieved at different deformation magnitudes up to the complete failure thanks to the use of synchrotron radiation (ESRF, Grenoble, France). A Finite element (FE) model is implemented based on the conversion of the tomograms into 3D meshes. High performance computing is used to simulate the tensile response of the hemp bast fibers. In particular, the effects of notching and sub-micrometric structure of the fibers are explored. Results show the presence of different types of diffuse damage kinetics, which are related to the variability in the fiber size, surface defects and the presence of the lumen space. The damage behavior is found to be sensitive to the type of stress criterion implemented in the FE computation. The predictive analysis demonstrates the relevance of using embedded microstructure simulations to reveal the extent of stress localization and predict the failure properties in bast fibers for innovative composite manufacturing for instance.
机译:这项研究结合了实验测试和计算分析,以揭示缺陷和亚微米微观结构在麻韧皮纤维拉伸行为中的作用。特别地,这些结构缺陷代表了纤维元素在从植物到最终用途产品的整个转化链中所经受的过程的足迹。在X射线显微断层扫描观察的同时,对宽直径范围(40–200μm)的基本纤维和纤维束进行拉伸实验。由于使用了同步加速器辐射(ESRF,格勒诺布尔,法国),在不同的变形幅度下可以实现超精细分辨率(体素尺寸为280 nm)的3D图像,直至完全破坏。基于断层图到3D网格的转换,实现了有限元(FE)模型。高性能计算用于模拟麻韧皮纤维的拉伸响应。特别地,研究了纤维的切口和亚微米结构的影响。结果表明存在不同类型的弥散损伤动力学,这与纤维尺寸,表面缺陷的变化和管腔空间的存在有关。发现损伤行为对有限元计算中实施的应力准则类型敏感。预测分析证明了使用嵌入式微观结构模拟揭示应力局部化程​​度并预测韧皮纤维的破坏特性(例如用于创新复合材料制造)的相关性。

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