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Modelling of crack propagation of gravity dams by scaled boundary polygons and cohesive crack model

机译:比例尺边界多边形和内聚裂纹模型建模重力坝裂缝扩展。

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Crack propagation in concrete gravity dams is investigated using scaled boundary polygons coupled with interface elements. The concrete bulk is assumed to be linear elastic and is modelled by the scaled boundary polygons. The interface elements model the fracture process zone between the crack faces. The cohesive tractions are modelled as side-face tractions in the scaled boundary polygons. The solution of the stress field around the crack tip is expressed semi-analytically as a power series. It reproduces the singular and higher-order terms in an asymptotic solution, such as the William's eigenfunction expansion when the cohesive tractions vanish. Accurate results can be obtained without asymptotic enrichment or local mesh refinement. The stress intensity factors are obtained directly from their definition and provide a convenient and accurate means to assess the zero-K condition, which determines the stability of a cohesive crack. The direction of crack propagation is determined from the maximum circumferential stress criterion. To accommodate crack propagation, a local remeshing algorithm that is applicable to any polygon mesh is augmented by inserting cohesive interface elements between the crack surfaces as the cracks propagate. Three numerical benchmarks involving crack propagation in concrete gravity dams are modelled. The results are compared to the experimental and other numerical simulations reported in the literature.
机译:使用比例边界边界和界面元素,研究了混凝土重力坝中的裂纹扩展。假定混凝土体积为线性弹性,并通过比例边界多边形建模。界面元素模拟了裂纹面之间的断裂过程区域。内聚力牵引力按比例绘制边界多边形中的侧面牵引力建模。裂纹尖端周围的应力场的解用半解析表示为幂级数。它以渐近解的形式重现单数和高阶项,例如当内聚力消失时威廉的本征函数展开。无需渐近富集或局部网格细化,即可获得准确的结果。应力强度因子直接从其定义中获得,并提供了方便而准确的方法来评估零K条件,该条件确定了粘结裂纹的稳定性。裂纹扩展的方向由最大圆周应力准则确定。为了适应裂纹扩展,通过在裂纹扩展时在裂纹表面之间插入内聚界面元素,可以增强适用于任何多边形网格的局部重新网格化算法。对涉及混凝土重力坝裂缝扩展的三个数值基准进行了建模。将结果与文献中报道的实验和其他数值模拟进行比较。

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