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Multiresolution Modeling Of Ductile Reinforced Brittle Composites

机译:韧性增强脆性复合材料的多分辨率建模

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Tungsten carbide-cobalt (WC-Co) is an important ductile reinforced brittle composite used in a range of important applications. The relationship between microstructure and mechanical properties of WC-Co is truly multiscale; micromechanical processes interact at different scales, resulting in permanent plastic deformation, damage accumulation and final failure of the composite. The goal of the current paper is to develop a continuum-based model, which captures the progressively finer scales of strain localization observed in WC-Co composites during plastic deformation and failure. This is achieved via a set of multiresolution governing equations; a micro-stress is introduced at each scale of strain localization, which represents the resistance to inhomogeneous strain localization at that scale. The extra constitutive models associated with these microstresses can be elucidated from the average response of separate computational cell models of a representative microstructure. The final multiresolution continuum model is capable of capturing the important length scales of deformation during the plastic stage of deformation without resorting to modeling microstructural scale features directly. The result is a more realistic continuum model; in particular the fracture toughness prediction is more physical when these length scales are incorporated compared to a conventional continuum approach.
机译:碳化钨-钴(WC-Co)是一种重要的韧性增强脆性复合材料,广泛用于许多重要应用中。 WC-Co的微观结构与力学性能之间的关系确实是多尺度的。微机械过程在不同尺度上相互作用,导致永久性塑性变形,损伤累积和复合材料最终破坏。当前论文的目的是建立一个基于连续体的模型,该模型捕获了在塑性变形和破坏过程中在WC-Co复合材料中观察到的逐渐缩小的应变局部尺度。这是通过一组多分辨率控制方程来实现的。在应变局部化的每个尺度上都引入了微应力,这表示在该尺度下对不均匀应变局部化的抵抗力。可以从代表性微结构的独立计算单元模型的平均响应中阐明与这些微应力相关的额外本构模型。最终的多分辨率连续体模型能够在塑性变形阶段捕获重要的变形长度尺度,而无需直接建模微观结构尺度特征。结果是一个更现实的连续模型。与传统的连续介质方法相比,尤其是当这些长度标尺被纳入时,断裂韧性预测更加物理化。

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