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In Situ Mechanical Characterization of Structural Bamboo Materials under Flexural Bending

机译:弯曲弯曲下结构竹材料的原位力学特性

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Experimental mechanical characterization of structural biomaterials, coupled with advanced in situ microscopic imaging, is critical for understanding their deformation and failure mechanisms in engineering applications. Our earlier study suggested that bamboo materials, widely used as scaffolding in construction, exhibit superior and asymmetric bending flexural behavior, while their corresponding mechanisms for crack growth under bending are not fully understood due to the complicated hierarchical structure. Here, we developed in situ characterization techniques assisted with high-resolution macro telescope to directly observe the flexural responses of bamboo strips under different loading configurations. Our in situ results show that the hierarchical microstructure of bamboo plays a critical role in alternating the crack propagation behaviors as well as failure mechanisms. In addition, a finite element analysis (FEA) model mimicking bamboo's functional graded (FG) structure has been developed to quantitatively investigate the origins of bamboo's asymmetric characteristics, with a numerical model proposed for crack propagation. Our technique could offer microscopical insights in the flexural failures of structural bamboo materials under bending, which may be of help on the design of advanced FG cellular composites.
机译:结构生物材料的实验力学表征,与先进的原位显微镜成像相结合,对于了解工程应用中的变形和故障机制至关重要。我们早期的研究表明,竹材材料广泛用作施工中的脚手架,表现出优异的和不对称的弯曲弯曲行为,而由于复杂的等级结构,弯曲下的裂纹增长的相应机制也没有完全理解。在这里,我们开发的原位特征技术辅助高分辨率宏望远镜,直接观察不同装载配置下竹条的弯曲响应。我们的原位结果表明,竹子的分层微观结构在交替裂缝传播行为以及故障机制方面发挥着关键作用。此外,已经开发了模拟竹子功能分级(FG)结构的有限元分析(FEA)模型,以定量研究竹子的不对称特性的起源,其中提出了一种用于裂纹传播的数值模型。我们的技术可以在弯曲下提供结构竹材料的弯曲故障的显微见解,这可能有助于设计先进的FG细胞复合材料。

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