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A continuum damage model for multi-axial low cycle fatigue of porous sintered metals based on the critical plane concept

机译:基于临界面概念的多孔烧结金属多轴低周疲劳连续损伤模型

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摘要

Experimental investigations reveal very different damage mechanisms in porous sintered metals from those of conventional dense materials. Interactions between the inherent porosity and heterogeneous matrix result in complicated deformation behavior and fatigue damage processes. In the present work, the damage evolution in the sintered metal under multi-axial cyclic loading conditions is studied experimentally and computationally. The total damage is divided into the stress-related elastic damage, the plastic damage induced by the plastic deformations and the fatigue damage driven by cyclic loading. To predict the cyclic deformation behavior as well as the fatigue damage evolution, a nonlinear fatigue damage model coupled with the critical plane concept is proposed, embedded into the Ohno-Wang cyclic plasticity and implemented into the FEM software ABAQUS based on an implicit integration algorithm. The proposed damage model is computationally and experimentally verified under multi-axial cyclic loading paths with different strain amplitudes. A good agreement between experimental and computational results shows that the present model is able to describe cyclic mechanical behavior and fatigue damage of porous metals. (C) 2016 Elsevier Ltd. All rights reserved.
机译:实验研究表明,多孔烧结金属的破坏机理与传统致密材料截然不同。固有孔隙率和非均质基体之间的相互作用导致复杂的变形行为和疲劳损伤过程。在目前的工作中,对烧结金属在多轴循环载荷条件下的损伤演化进行了实验和计算研究。总损伤分为与应力有关的弹性损伤,由塑性变形引起的塑性损伤和由循环载荷驱动的疲劳损伤。为了预测循环变形行为以及疲劳损伤的演化,提出了一种非线性疲劳损伤模型,结合临界平面概念,将其嵌入Ohno-Wang循环可塑性中,并基于隐式积分算法实现在FEM软件ABAQUS中。所提出的损伤模型在不同应变幅度的多轴循环载荷路径下进行了计算和实验验证。实验和计算结果之间的良好一致性表明,该模型能够描述多孔金属的循环力学行为和疲劳损伤。 (C)2016 Elsevier Ltd.保留所有权利。

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