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Macro- and micro-modeling of crack propagation in encapsulation-based self-healing materials: Application of XFEM and cohesive surface techniques

机译:封装的自我愈合材料中裂纹传播的宏观和微观建模:XFEM和粘性表面技术的应用

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摘要

Encapsulation-based materials are produced introducing some small healing fluid-filled capsules in a matrix. These materials can self-heal when internal cracks intercept and break the capsules. If the healing agent is released, the crack can be sealed. However, this is not always the case. These capsules need to be designed with the adequate shape and material to be properly broken. This paper presents two application models based on the combination of eXtended Finite Element Method (XFEM) elements and Cohesive Surfaces technique (CS) to predict crack propagation. Two types of encapsulated systems are considered: a concrete beam in a three-point bending test, and a micro-scale model of a representative volume element of a polymer subjected to a uniaxial tensile test. Despite both systems rely on different capsule shapes and different constituent materials, the models predict a similar non-linear response of the overall material strength governed by the coupled effect of the interface strength and the capsule radii-to-thickness ratio. Furthermore, even if an inadequate material and geometry combination is used, it is found that the mere presence of capsules might achieve, under certain conditions, an interesting overall reinforcement effect. This effect is discussed in terms of clustering and volume fraction of capsules.
机译:基于封装材料产生在基质中引入一些小愈合流体填充胶囊。这些材料可自愈当内部裂纹截距和破坏胶囊。如果愈合剂被释放时,裂缝可被密封。然而,这并非总是如此。这些胶囊需要被设计成具有足够的形状和材料进行适当打破。基于扩展有限元法(XFEM)元件和衔接表面技术(CS)的组合本文呈现两个应用模型来预测裂纹扩展。两种类型的封装的系统被认为是:一个混凝土梁在三点弯曲试验,并进行单轴拉伸试验的聚合物的代表性的体积元件的微米尺度模型。尽管这两个系统依赖于不同的胶囊的形状和不同的构成材料,所述模型预测通过的界面强度的耦合效果和胶囊半径与厚度比支配整个材料强度的类似的非线性响应。此外,即使使用一个不充分的材料和几何形状的组合,可以发现,胶囊的存在本身可能实现的,在某些条件下,一个有趣的整体加固效果。这种效果是在聚类和胶囊的体积分数来讨论。

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