三点弯曲下生物启发珍珠层状纳米复合材料机械响应的计算研究

Xing Yang, Md Jalal Uddin Rumi, Xiaowei Zeng
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引用次数: 0

摘要

天然生物纳米复合材料(如珍珠质)显示出非凡的断裂韧性,超过了它们的基础材料,这归功于它们错综复杂的分层结构,将硬相与软相融为一体。这些复合材料韧性的增强往往与裂纹偏转机制有关。利用提高有机材料耐久性、韧性和坚固性的核心设计原则,本文介绍了利用计算建模和仿真对有意模仿珍珠质微观结构细节的三维交错纳米复合材料进行三点弯曲测试的方法。我们采用了之前提出的界面区模型,将 "相对较软 "的层概念化为 "坚硬 "的矿物片与微结构层间空间之间的界面,以研究微结构和界面特性如何影响机械响应和失效机制。通过将模型的预测结果与天然珍珠岩的实验数据进行比较,模拟揭示了通过相邻层滑动和跨界面区的裂纹偏转而造成的矿片分离机制。这项研究为研究断裂增韧机制和损伤演变提供了一种可靠的数值方法,有助于加深对仿生材料内部复杂相互作用的理解。
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Computational Investigation of the Mechanical Response of a Bioinspired Nacre-like Nanocomposite under Three-Point Bending
Natural biological nanocomposites, like nacre, demonstrate extraordinary fracture toughness, surpassing their base materials, attributed to their intricate staggered hierarchical architectures integrating hard and soft phases. The enhancement of toughness in these composites is often linked to the crack-deflection mechanism. Leveraging the core design principles that enhance durability, resilience, and robustness in organic materials, this paper describes the use of computational modeling and simulation to perform a three-point bending test on a 3D staggered nanocomposite intentionally crafted to mimic the detailed microstructure of nacre. We adopted a previously proposed interfacial zone model that conceptualizes the “relatively soft” layer as an interface between the “hard” mineral tablets and the microstructure’s interlayer spaces to examine how the microstructure and interface characteristics affect the mechanical responses and failure mechanisms. By comparing the model’s predictions with experimental data on natural nacre, the simulations unveil the mechanisms of tablet separation through adjacent layer sliding and crack deflection across interfacial zones. This study offers a robust numerical method for investigating the fracture toughening mechanisms and damage evolution and contributes to a deeper understanding of the complex interplays within biomimetic materials.
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