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Modeling of material damage using finite elements and time homogenization in case of finite strain

机译:有限元造型用有限元造型的材料损伤建模

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This work is aimed at numerical simulations of high-cycle fatigue behavior of elastomeric materials. The main concern, however, is not the fatigue life itself, but the changes of mechanical properties prior to failure. This is of special interest in the case of elastomers. In such a case, large strains must be considered and so does, consequently, nonlinearity of constitutive equations as well. The usual approach to fatigue analysis consists of modal analysis and application of linear cumulation rule for damage. This is not generally applicable to large-strain regime nor to nonlinear material models. The most general approach to such problem is a full simulation of damage cumulation in time domain. Such a simulation, however, would be prohibitively expensive for a large number of loading cycles. As a remedy, the method of homogenization in time domain may be applied to the problem. The method has been applied to various material models already (viscoelasticity, viscoplasticity, damage). This article shows its applicability to the problem of damage cumulation under large strains and a significant improvement in computational times over full simulation. (C) 2017 Elsevier Inc. All rights reserved.
机译:该工作旨在旨在弹性材料的高周疲劳行为的数值模拟。然而,主要关注的是疲劳生活本身,而是在发生故障之前的机械性能变化。这对弹性体的情况具有特殊兴趣。在这种情况下,必须考虑大菌株,因此,因此也是本构方程的非线性。通常的疲劳分析方法包括模态分析和损坏线性累积规则的应用。这通常不适用于大应变制度,也不适用于非线性材料模型。此类问题最常见的方法是在时域中的损伤累积完全模拟。然而,这种模拟对于大量的装载周期来说是对昂贵的。作为补救措施,可以将在时域中的均质化方法应用于问题。该方法已应用于各种材料模型(粘弹性,粘塑性,损坏)。本文介绍了对大型菌株下损伤累积问题的适用性以及在完全模拟上进行计算时间的显着改善。 (c)2017年Elsevier Inc.保留所有权利。

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