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Mapping the coupled role of structure and materials in mechanics of platelet-matrix composites

机译:映射结构和材料在血小板-基质复合材料力学中的耦合作用

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Despite significant progresses on understanding and mimicking the delicate nano/microstructure of biomaterials such as nacre, decoding the indistinguishable merger of materials and structures in controlling the tradeoff in mechanical properties has been long an engineering pursuit. Herein, we focus on an archetype platelet-matrix composite and perform ∼400 nonlinear finite element simulations to decode the complex interplay between various structural features and material characteristics in conferring the balance of mechanical properties. We study various combinatorial models expressed by four key dimensionless parameters, i.e. characteristic platelet length,matrix plasticity, platelet dissimilarity, and overlap offset,whose effects are all condensed in a new unifying parameter, defined as the multiplication of strength, toughness, and stiffness over composite volume. This parameter, which maximizes at a critical characteristic length,controls the transition from intrinsic toughening (matrix plasticity driven without crack growths) to extrinsic toughening phenomena involving progressive crack propagations. This finding, combined with various abstract volumetric and radar plots, will not only shed light on decoupling the complex role of structure and materials on mechanical performance and their trends, but provides important guidelines for designing lightweight staggered platelet-matrix composites while ensuring the best (balance) of their mechanical properties.
机译:尽管在理解和模仿生物材料(如珍珠母)的微妙的纳米/微观结构方面取得了重大进展,但解码材料和结构在控制机械性能的权衡方面难以区分的融合一直是一项工程追求。本文中,我们重点研究原型血小板-基质复合材料,并进行约400次非线性有限元模拟,以解码各种结构特征和材料特性之间的复杂相互作用,以赋予力学性能平衡。我们研究了由四个关键的无量纲参数(即特征血小板长度,基质可塑性,血小板不相似性和重叠偏移)表达的各种组合模型,其作用都凝聚在一个新的统一参数中,定义为强度,韧性和刚度的乘积复合体积。该参数在关键特征长度处最大化,它控制从固有增韧(由无裂纹扩展驱动的基体塑性)到涉及渐进式裂纹扩展的外在增韧现象的过渡。这一发现与各种抽象的体积和雷达图相结合,不仅将结构和材料在机械性能及其趋势上的复杂作用脱钩,而且为设计轻型交错式血小板基质复合材料提供了重要指导,同时确保了最佳效果(平衡)的机械性能。

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