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Comparison between cohesive zone models

机译:内聚区模型之间的比较

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摘要

Cohesive zones are surfaces of discontinuities where displacements jump. A specific constitutive law relating the displacement jumps and proper tractions defines the cohesive zone model. Within the cohesive zone approach crack nucleation, propagation, and arrest are a natural outcome of the theory. The latter is in contrast to the traditional approach of fracture mechanics where stress analysis is separated from a description of the actual process of material failure. The common wisdom says that only cohesive strength-the maximum stress on the traction-separation curve-and the separation work-the area under the traction-separation curve-are important in setting a CZM while the shape of the traction-separation curve is subsidiary. It is shown in our note that this rule may not be correct and a specific shape of the cohesive zone model can significantly affect results of the fracture analysis. For this purpose four different cohesive zone models-bilinear, parabolic, sinusoidal, and exponential-are compared by using a block-peel test, which allows for simple analytical solutions. Numerical performance of the cohesive zone models is considered. It appears that the convergence properties of nonlinear finite element analyses are similar for all four CZMs in the case of the block-peel test.
机译:内聚区是位移跳跃的不连续表面。有关位移跳跃和适当牵引力的特定本构定律定义了内聚区模型。在粘性区域内,裂纹的成核,扩展和阻止是该理论的自然结果。后者与传统的断裂力学方法相反,在传统的断裂力学方法中,应力分析与对材料实际破坏过程的描述是分开的。普遍的看法是,在设置CZM时,只有内聚强度-牵引力-分离曲线上的最大应力-分离功-牵引力-分离曲线下的面积-才是重要的,而牵引力-分离曲线的形状是辅助的。在我们的注释中显示,该规则可能不正确,内聚区模型的特定形状可能会严重影响断裂分析的结果。为此,使用块剥离测试比较了四个不同的内聚力区域模型(双线性,抛物线形,正弦形和指数形),从而可以提供简单的分析解决方案。考虑粘性区域模型的数值性能。似乎在方块剥离试验的情况下,所有四个CZM的非线性有限元分析的收敛特性都相似。

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