论文标题
粘性材料中的准静态裂纹前变形
Quasi-static crack front deformations in cohesive materials
论文作者
论文摘要
当裂纹与材料异质性相互作用时,其前部会扭曲并采用复杂的曲折构型,使人联想到裂纹传播过程中遇到的能屏障。因此,裂纹前变形的研究是合理化微型结构固体和接口的有效故障特性的关键。然而,经常忽略了裂纹前后的有限区域中局部耗散区域的影响。在这项工作中,我们在异质粘性材料中得出了方程统治3D共面裂纹的传播,其中裂缝的开口在某种程度上被某种牵引力所抵抗。我们表明,过程区的存在会对裂纹前沿的变形产生两种竞争影响:(i)它使前部更适合小波长扰动,并且(ii)它平化了强度和过程区域大小的局部波动,从而从中出现了骨折能量的异质性。它们各自对前变形的影响被证明会强烈影响扰动裂纹前沿的稳定性,以及与艰难障碍阵列相互作用时的固定形状。总体而言,我们的理论提供了一个统一的框架,以预测实验中观察到的各种前轮廓,即使小规模的线性弹性断裂力学的假设分解了。
When a crack interacts with material heterogeneities, its front distorts and adopts complex tortuous configurations that are reminiscent of the energy barriers encountered during crack propagation. As such, the study of crack front deformations is key to rationalize the effective failure properties of micro-structured solids and interfaces. Yet, the impact of a localized dissipation in a finite region behind the crack front, called the process zone, has often been overlooked. In this work, we derive the equation ruling 3D coplanar crack propagation in heterogeneous cohesive materials where the opening of the crack is resisted by some traction in its wake. We show that the presence of a process zone results in two competing effects on the deformation of crack fronts: (i) it makes the front more compliant to small-wavelength perturbations, and (ii) it smooths out local fluctuations of strength and process zone size, from which emerge heterogeneities of fracture energy. Their respective influence on front deformations is shown to strongly impact the stability of perturbed crack fronts, as well as their stationary shapes when interacting with arrays of tough obstacles. Overall, our theory provides a unified framework to predict the variety of front profiles observed in experiments, even when the small-scale yielding hypothesis of linear elastic fracture mechanics breaks down.