揭示贻贝斑块核心的可变形性:孔隙分布和分层结构的作用。

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL
Soft Matter Pub Date : 2024-08-27 DOI:10.1039/D4SM00832D
Yulan Lyu, Mengting Tan, Yong Pang, Wei Sun, Shuguang Li and Tao Liu
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引用次数: 0

摘要

贻贝螺纹-斑块系统具有很强的粘附性和高变形性,可粘附在各种表面上。虽然对斑块的微观结构进行了深入研究,但其独特的多孔结构对高变形性的影响仍不清楚。本研究首先使用扫描电子显微镜(SEM)研究了贻贝斑块核心的多孔结构。生成了具有比例分布参数的二维(2D)多孔代表体积元素(RVE),并应用校准相场建模方法分析了孔隙分布和多尺度多孔结构对多孔 RVE 失效机制的影响。扫描电镜分析表明,大尺度孔隙呈现对数正态尺寸分布和均匀的空间分布。模拟结果表明,增加大尺度孔分布的归一化平均半径值(ū)会在统计学上导致最终破坏应变、强度和应变能密度呈下降趋势,但并不能完全决定它们的值。在相同的孔隙分布下,孔隙之间的相互作用会导致两种不同的破坏模式:渐进破坏模式和突然破坏模式。此外,与单尺度多孔 RVE 相比,多尺度多孔 RVE 的分层结构可通过降低刚度将最终破坏应变进一步提高 40-60%,这表明分层结构可能是导致高变形能力的另一个关键因素。这些发现加深了我们对贻贝斑块中孔隙分布和多尺度多孔结构如何促成其高变形性并影响其他力学性能的理解,为未来设计高变形性仿生材料提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Unveiling the deformability of mussel plaque core: the role of pore distribution and hierarchical structure†

Unveiling the deformability of mussel plaque core: the role of pore distribution and hierarchical structure†

Unveiling the deformability of mussel plaque core: the role of pore distribution and hierarchical structure†

The mussel thread-plaque system exhibits strong adhesion and high deformability, allowing it to adhere to various surfaces. While the microstructure of plaques has been thoroughly studied, the effect of their unique porous structure on the high deformability remains unclear. This study first investigated the porous structure of mussel plaque cores using scanning electron microscopy (SEM). Two-dimensional (2D) porous representative volume elements (RVEs) with scaled distribution parameters were generated, and the calibrated phase-field modelling method was applied to analyse the effect of the pore distribution and multi-scale porous structure on the failure mechanism of porous RVEs. The SEM analysis revealed that large-scale pores exhibited a lognormal size distribution and a uniform spatial distribution. Simulations showed that increasing the normalised mean radius value (ū) of the large-scale pore distribution can statistically lead to a decreasing trend in final failure strain, strength and strain energy density but cannot solely determine their values. The interaction between pores can lead to two different failure modes under the same pore distribution: progressive failure mode and sudden failure mode. Additionally, the hierarchical structure of multi-scale porous RVEs can further increase the final failure strain by 40–60% compared to single-scale porous RVEs by reducing stiffness, highlighting the hierarchical structure could be another key factor contributing to the high deformability. These findings deepen our understanding of how the pore distribution and multi-scale porous structure in mussel plaques contribute to their high deformability and affect other mechanical properties, providing valuable insights for the future design of highly deformable biomimetic materials.

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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Where physics meets chemistry meets biology for fundamental soft matter research.
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