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一种高拉伸的双网络复合材料。

A highly stretchable double-network composite.

机构信息

Department of Aerospace Engineering, Iowa State University, Ames, IA 50011, USA.

出版信息

Soft Matter. 2016 Nov 9;12(44):8999-9006. doi: 10.1039/c6sm01781a.

DOI:10.1039/c6sm01781a
PMID:27714366
Abstract

Inspired by the toughening mechanism of double-network (DN) hydrogels, a soft composite consisting of a fabric mesh and VHB tape layers was fabricated. The composite was as stiff as the fabric mesh, and as stretchable as the VHB tape. At certain compositions, the composite was significantly stronger and tougher than the base materials. The extensibility and toughness of the composite can be attributed to a damage delocalization mechanism similar to that of the DN gels. In the partially damaged regions, the fabric mesh fragmented into small islands, surrounded by the highly stretched VHB tapes. Accommodated by the finite sliding at the interface, the large deformation of the composite is highly non-affine. Just as the DN gels, the coexistence of the partially damaged and intact regions resulted in a stable necking in the composite when subjected to uniaxial tension. The propagation of the necking zone corresponded to a plateau on the stress-stretch curve. During cyclic loading, the composite also exhibited stress hysteresis with almost recoverable strain, similar to that in a DN gel. To rationalize these observations and to better understand the underlying physical mechanism, a simple 1D model has been developed for the damage evolution process in the composite. The predictions of the model have achieved good agreement with the measured properties of the composite of various compositions. Furthermore, the composite itself may also be regarded as a macroscopic model when studying the properties and toughening mechanism of the DN gels.

摘要

受双网络(DN)水凝胶增韧机制的启发,制备了一种由织物网格和 VHB 胶带层组成的软复合材料。该复合材料与织物网格一样坚硬,与 VHB 胶带一样具有拉伸性。在一定的组成下,复合材料的强度和韧性明显优于基体材料。复合材料的拉伸性和韧性可归因于类似于 DN 凝胶的损伤耗散机制。在部分损坏区域,织物网格碎裂成小岛,周围是高度拉伸的 VHB 胶带。通过界面的有限滑动来适应,复合材料的大变形高度非仿射。就像 DN 凝胶一样,当复合材料受到单向拉伸时,部分损坏和完整区域的共存导致稳定的颈缩。颈缩区域的扩展对应于应力-应变曲线上的平台。在循环加载过程中,复合材料还表现出具有几乎可恢复应变的应力滞后现象,类似于 DN 凝胶。为了使这些观察结果合理化,并更好地理解潜在的物理机制,已经为复合材料中的损伤演化过程开发了一个简单的 1D 模型。该模型的预测与各种组成的复合材料的测量性能吻合良好。此外,在研究 DN 凝胶的性能和增韧机制时,复合材料本身也可以看作是一种宏观模型。

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