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Mesoscopic Numerical Simulation of Fracture Process and Failure Mechanism of Concrete Based on Convex Aggregate Model

机译:基于凸形聚集模型的混凝土断裂工艺和故障机理的介观数值模拟

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To investigate the fracture process and failure mechanism of concrete subjected to uniaxial compressive loading, a new finite element method—the base force element method (BFEM)—was adopted in the modeling of numerical simulation. At mesoscale, concrete is considered as a three-phase heterogeneous material composed of aggregate particles, cement mortar, and the interfacial transition zones between the two phases. A two-dimensional random convex aggregate model was established using the principle of the area equivalence method. A multistage linear damage constitutive model that can describe nonlinear behavior of concrete under mechanical stress was proposed. The mechanical properties of concrete mesoscopic components are determined. The numerical simulation results indicate that the base force element method can be applied to predict the failure pattern of concrete under compressive loading, which have a good accordance with the available experiment data. The stress contour plots were given and used to analyze the failure mechanism of concrete. The effects of specimen size on the strength of concrete material were studied. It is found that compressive strength of concrete decreases as the specimen size increases. In addition, the influences of aggregate distribution, coarse aggregate content, and end friction on concrete performance are explored.
机译:探讨经受单轴压缩负荷的混凝土的断裂过程和失效机理,新的有限元法 - 数值模拟建模采用的基力元件方法(BFEM)-WAS。在Mesoscale,混凝土被认为是由两相之间的聚集颗粒,水泥砂浆和界面过渡区域组成的三相异质材料。使用区域等效方法的原理建立了二维随机凸形聚合模型。提出了一种可以描述机械应力下混凝土非线性行为的多级线性损伤本构模型。确定混凝土介质组分的力学性能。数值模拟结果表明,基本力元件方法可以应用于在压缩负载下预测混凝土的故障模式,这与可用的实验数据有关。给出了应力轮廓图并用于分析混凝土的失效机理。研究了试样大小对混凝土材料强度的影响。结果发现,随着样品尺寸的增加,混凝土的抗压强度降低。此外,还探讨了骨料分布,粗骨料含量和最终摩擦对混凝土性能的影响。

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