论文标题

可塑性对有效断裂韧性各向异性的影响

Effects of plasticity on the anisotropy of the effective fracture toughness

论文作者

Brach, Stella

论文摘要

本文研究了可塑性对有效断裂韧性的影响。分层材料被认为是建模系统。 使用弹性塑性相位模型和冲浪边界条件来研究裂纹如何在整个材料中传播以及有效韧性随着层角的函数的变化。我们首先研究了三种理想情况,在裂缝韧性中只有一个特性,杨氏模量和屈服强度是异质的,而其他属性是统一的。我们观察到,在韧性和强度异质性的情况下,该材料表现出异常的各向同性:在任何层角的有效韧性等于点的最大点值,除非层平行于传播的宏观方向。随着层角的下降,裂纹沿着脆弱的界面繁殖,而当层具有不同的屈服强度但韧性均匀的情况时,裂纹会径直。我们发现,裂纹路径中的平滑偏转不会引起任何整体韧性,并且有效韧性与累积的断裂能或累积的塑料工作成正比。在弹性异质性的情况下,在有效韧性的意义上,材料是各向异性的,因为后者随层角的函数而变化。四种韧性机制是活跃的:应力波动,裂缝再核,塑料耗散和塑料钝化。最后,我们考虑了一种层状培养基,包括兼容的牵引和僵硬的二相,因为许多结构复合材料就是这种情况。随着相成分变得更加延展,我们观察到从以塑性为主的失败状态的界面为主导的失败状态的过渡。从有效韧性的意义上讲,材料是各向异性的。

This paper investigates the effects of plasticity on the effective fracture toughness. A layered material is considered as a modelling system. An elastic-plastic phase-field model and a surfing boundary condition are used to study how the crack propagates throughout the material and the evolution of the effective toughness as a function of the layer angle. We first study three idealized situations, where only one property among fracture toughness, Young's modulus and yield strength is heterogeneous whereas the others are uniform. We observe that in the case of toughness and strength heterogeneity, the material exhibits anomalous isotropy: the effective toughness is equal to the largest of the point-wise values for any layer angle except when the layers are parallel to the macroscopic direction of propagation. As the layer angle decreases, the crack propagates along the brittle-to-tough interfaces, whereas it goes straight when the layers have different yield strength but uniform toughness. We find that smooth deflections in the crack path do not induce any overall toughening and that the effective toughness is not proportional to either the cumulated fracture energy or the cumulated plastic work. In the case of elastic heterogeneity, the material is anisotropic in the sense of the effective toughness, as the latter varies as a function of the layer angle. Four toughening mechanisms are active: stress fluctuations, crack renucleation, plastic dissipation and plastic blunting. Finally, we consider a layered medium comprised of compliant-tough-weak and stiff-brittle-strong phases, as it is the case for many structural composites. We observe a transition from an interface-dominated to a plasticity-dominated failure regime, as the phase constituents become more ductile. The material is anisotropic in the sense of the effective toughness.

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