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Multiscale modeling of concrete and of the FRP-concrete interface

机译:混凝土和FRP-混凝土界面的多尺度建模

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摘要

Cracking and failure processes in concrete members as well as debonding mechanisms between concrete surfaces and fiber-reinforced polymer composites used for structural strengthening are often modeled through macroscopic empirically-based cohesive zone models. This approach presents a number of limitations, as macroscopic laws spatially homogenize complex damage and failure processes taking place at the lower scales. This paper proposes a multiscale approach for concrete and for the determination of mixed-mode cohesive zone models for the composite-concrete interface based on mesomechanical analysis. The mesomechanical model includes the explicit description of the heterogeneous material geometry close to the interfacial zone, as well as a contin uum damage description for both the cement matrix and the matrix-aggregate interfacial transition zone. Macroscopic mixed-mode cohesive zone laws are then obtained through a numerical homogenization procedure. The choice of the representative volume element is discussed and the cohesive behavior under mode-I, mode-II and loading conditions with different degrees of mode mixity is analyzed. Comparisons with available experimental and analytical results are also performed.
机译:混凝土构件的开裂和破坏过程,以及混凝土表面与用于结构加固的纤维增强聚合物复合材料之间的脱粘机制,通常是通过基于经验的宏观内聚区模型来建模的。这种方法存在许多局限性,因为宏观定律在空间上将发生在较低规模的复杂损伤和破坏过程均质化。本文提出了一种用于混凝土的多尺度方法,并基于细观力学分析确定了复合混凝土界面的混合模式内聚区模型。细观力学模型包括对界面附近非均质材料几何形状的明确描述,以及对水泥基质和基质-骨料界面过渡带的连续破坏描述。然后通过数值均化程序获得宏观混合模式内聚区定律。讨论了代表性体积元素的选择,并分析了在模式I,模式II和不同模式混合程度的载荷条件下的内聚行为。还进行了与可用的实验和分析结果的比较。

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