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Near-tip stress fields of rough and frictional cracks under mixed-mode loading

机译:混合模式载荷作用下粗糙裂纹和摩擦裂纹的近尖端应力场

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The characterisation of the stress fields in proximity of crack tips is a fundamental task in fracture mechanics, providing means for the assessment of the fracture resistance or the crack growth rate. Among several methods available for the computation of the crack-tip stress intensity factor, an extremely efficient and flexible solution strategy is obtained using the distributed dislocation technique. This method has been successfully applied to several remote loading conditions and cracked geometries and can also take into account the effect of surface friction and roughness through the inclusion of an appropriate interface model. In this paper, we make use of a non-linear algorithm, which uses dislocations distributed along the crack, to compute the crack-tip stress intensity factors under remote mixed-mode stress fields. It is shown that the algorithm can be effectively applied to different geometries, notably to cases where the mode mixity originates from geometrical features, such as in the presence of notches or re-entrant corners. In particular, the effect of dilatancy is correctly captured with the adopted method, and its consequences are discussed with regard to the onset of unstable crack propagation under monotonic loading.
机译:裂纹尖端附近的应力场的表征是断裂力学中的基本任务,为评估抗断裂性或裂纹扩展速率提供了手段。在几种可用于计算裂纹尖端应力强度因子的方法中,使用分布式位错技术获得了一种非常有效且灵活的求解策略。该方法已成功应用于多种远程载荷条件和破裂的几何形状,并且还可以通过包含适当的界面模型来考虑表面摩擦和粗糙度的影响。在本文中,我们利用非线性算法,该算法使用沿裂纹分布的位错,来计算远程混合模式应力场下的裂纹尖端应力强度因子。结果表明,该算法可以有效地应用于不同的几何形状,特别是模式混合源于几何特征的情况下,例如在存在缺口或凹角的情况下。尤其是,采用所采用的方法可以正确捕捉膨胀效应,并就单调载荷下不稳定裂纹扩展的开始讨论其后果。

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