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Original mechanism of failure initiation revealed through modelling of naturally occurring microstructures

机译:通过对自然发生的微观结构建模揭示了引发故障的原始机制

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Motivated to reveal original mechanisms of failure resistance, we developed a material model that encompasses most reoccurring microstructural features of natural composites. The interesting result of the work is a notion that material failure is governed by the quality of interactions between hierarchical levels in the material microstructure. With intelligent use of the structure, these interactions can be tuned to create a powerful synergetic effect on the material failure behaviour. For example, while exploring different mechanisms of failure initiation in composites with bimodal size reinforcements (an indirect way to model two levels of hierarchy simultaneously) we found that failure initiation could be shifted from stress concentration sites of the higher level to the lower level. One could say that the material behaviour became insensitive to the presence of reinforcements on the higher level-a phenomenon that is counterintuitive to what is commonly known. The new mechanism of failure initiation could only be activated in composites with a highly controlled structural organiza tion-in the studied case, reinforcements of the lower level needed to establish lamellar pathways between reinforcements of the higher level. These pathways lead to formation of an intriguing network-like microstructure. Intelligent communication between reinforcements in such a network created the necessary synergy to change the failure initiation mechanism in a discontinuous fashion. Another finding was that by establishing such a network, tensile stresses near dangerous stress concentration sites were locally transformed into compressive stresses. Resemblance of the revealed mechanism to phenomena on the nano-scale was also discussed. In the course of this work a new method was developed to investigate interactions between reinforcements and their collective input into effective and local properties of a composite. The reinforcement phase was modelled with the use of rigid-line inhomogeneities.
机译:为了揭示抗破坏性的原始机制,我们开发了一种材料模型,该模型包含了天然复合材料中最常见的微观结构特征。这项工作的有趣结果是,一种观念认为材料失效是由材料微观结构中层级之间相互作用的质量决定的。通过智能地使用结构,可以调整这些相互作用以对材料的破坏行为产生强大的协同作用。例如,在探索具有双峰尺寸增强材料的复合材料中不同的破坏起始机制(同时模拟两个层次结构的间接方法)时,我们发现破坏起始可以从较高水平的应力集中位置转移到较低水平。可以说,材料的行为对更高级别的增强材料的存在变得不敏感,这种现象与通常所知是相反的。失效起始的新机制只能在具有高度受控结构组织的复合材料中激活-在所研究的情况下,较低水平的增强物需要在较高水平的增强物之间建立层状通道。这些途径导致形成有趣的网络状微结构。在这样的网络中,加强件之间的智能通信产生了必要的协同作用,从而以不连续的方式改变了故障引发机制。另一个发现是,通过建立这样的网络,危险应力集中点附近的拉应力会局部转化为压应力。还讨论了所揭示机理与纳米级现象的相似性。在这项工作的过程中,开发了一种新的方法来研究增强材料与它们的共同输入之间的相互作用,从而有效地增强复合材料的局部性能。使用刚性线不均匀性对增强阶段进行建模。

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