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Phase-field modeling of fatigue coupled to cyclic plasticity in an energetic formulation

机译:疲劳耦合到能量配方中循环可塑性的相场建模

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This paper presents a modeling framework to describe the driving mechanisms of cyclic failure in brittle and ductile materials, including cyclic plasticity and fatigue crack growth. A variational model is devised using the energetic formulation for rate-independent systems, coupling a phase-field description of fatigue fracture to a cyclic plasticity model that includes multi-surface kinematic hardening, gradient-enhanced isotropic hardening/softening and ratcheting. The coupled model embeds two distinctive fatigue effects. The first captures the characteristic features of low-cycle fatigue, driven by the accumulation of plastic strains, while the second accounts for high-cycle fatigue, driven by free energy accumulation. The interplay between these mechanisms allows to describe a wide range of cyclic responses under both force loading and displacement loading, as shown in several numerical simulations. Moreover, the phase-field approach to fracture accounts for the initiation and propagation of fatigue-induced cracks. (C) 2020 Elsevier B.V. All rights reserved.
机译:本文介绍了建模框架,用于描述脆性和延性材料中循环衰竭的驱动机制,包括循环可塑性和疲劳裂纹生长。利用速率独立系统的能量配方设计了变形模型,耦合疲劳断裂到循环可塑性模型的相场描述,包括多表面运动硬化,梯度增强的各向同性硬化/软化和棘轮。耦合模型嵌入了两个独特的疲劳效果。首先捕获低周期疲劳的特征,由塑料菌株的积累驱动,而第二次占高循环疲劳的占据,由自由能量驱动。这些机制之间的相互作用允许描述在力负载和位移负载下的宽范围的循环响应,如若干数值模拟所示。此外,裂缝的相位场方法占疲劳诱导裂缝的启动和传播。 (c)2020 Elsevier B.v.保留所有权利。

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