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Influence of the meso-structure in dynamic fracture simulation of concrete under tensile loading

机译:细观结构在拉伸载荷作用下混凝土动态断裂模拟中的影响

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摘要

We investigate the dynamic behavior of concrete in relation to its composition within a computational framework (FEM). Concrete is modeled using a meso-mechanical approach in which aggregates and mortar are represented explicitly. Both continuum phases are considered to behave elastically, while nucleation, coalescence and propagation of cracks are modeled using the cohesive-element approach. In order to understand the loading-rate sensitivity of concrete, we simulate direct tensile-tests for strain rates ranging 1-1000 s~(-1). We investigate the influence of aggregate properties (internal ordering, size distribution and toughness) on peak strength and dissipated fracture energy. We show that a rate independent constitutive law captures the general increase of peak strength with strain rate. However, a phenomenological rate-dependent cohesive law is needed to obtain a better agreement with experiments. Furthermore, at low rates, peak strength is sensitive to the inclusions' toughness, while the matrix dominates the mechanical behavior at high rates.
机译:我们在计算框架(FEM)中调查混凝土的动态行为与其组成的关系。混凝土是使用细观力学方法建模的,其中明确表示了骨料和砂浆。认为两个连续相都具有弹性,而裂纹的成核,聚结和扩展则使用内聚元素方法进行建模。为了了解混凝土的加载速率敏感性,我们模拟了直接拉伸试验,其应变速率范围为1-1000 s〜(-1)。我们研究骨料性能(内部有序性,尺寸分布和韧性)对峰值强度和耗散断裂能的影响。我们表明,速率无关的本构定律可捕获随应变速率而增加的峰值强度。但是,需要一种现象学速率依赖的内聚规律,以与实验更好地达成一致。此外,在低速率下,峰值强度对夹杂物的韧性敏感,而基体则在高速率下支配机械性能。

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