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首页> 外文期刊>Mechanics of materials >Microimaging-informed continuum micromechanics accurately predicts macroscopic stiffness and strength properties of hierarchical plant culm materials
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Microimaging-informed continuum micromechanics accurately predicts macroscopic stiffness and strength properties of hierarchical plant culm materials

机译:借助微影像学知识的连续体微力学可准确预​​测分层植物茎秆材料的宏观刚度和强度特性

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摘要

Plant materials exhibit a wide range of highly anisotropic mechanical behavior due to a hierarchy of microheterogeneous structures at different length scales. In this article, we present a micromechanics approach that derives a hierarchical microstructure driven model of macroscopic stiffness and strength properties of anisotropic culm materials. As model input, it requires mechanical properties of the base constituents such as cellulose and lignin as well as morphology and volume fractions of all heterogeneous components at each hierarchical level. The latter can be retrieved from imaging data at different length scales, obtained from scanning electron and transmission electron microscopy. We illustrate our modeling approach for the example of bamboo that has gained increasing attention in the last decade due to its role as a sustainable building material. Validating its predictions of macroscopic stiffness moduli and ultimate strength with corresponding experimental measurements, we demonstrate that the micromechanics model provides excellent accuracy without any further phenomenological calibration. We also show that the multiscale modeling approach enables a better physics-based understanding of the origins of bamboo stiffness and strength across different scales.
机译:由于在不同的长度尺度上微异质结构的层次结构,植物材料表现出广泛的高度各向异性的机械行为。在本文中,我们提出了一种微力学方法,该方法可导出各向异性茎秆材料的宏观刚度和强度特性的层次化微观结构驱动模型。作为模型输入,它需要基本成分(例如纤维素和木质素)的机械性能,以及每个层次级别上所有异质成分的形态和体积分数。后者可以从扫描电子和透射电子显微镜获得的不同长度比例的成像数据中检索。我们以竹子为例来说明我们的建模方法,由于其作为可持续建筑材料的作用,竹子在过去十年中受到越来越多的关注。验证其对宏观刚度模量和极限强度的预测以及相应的实验测量,我们证明了微力学模型无需任何现象学校准即可提供出色的准确性。我们还表明,多尺度建模方法可以更好地基于物理原理来了解不同尺度下竹子刚度和强度的起源。

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