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Adaptive Finite Element Methods for Continuum Damage Modeling

机译:连续损伤建模的自适应有限元方法

摘要

The paper presents an application of adaptive finite element methods to the modeling of low-cycle continuum damage and life prediction of high-temperature components. The major objective is to provide automated and accurate modeling of damaged zones through adaptive mesh refinement and adaptive time-stepping methods. The damage modeling methodology is implemented in an usual way by embedding damage evolution in the transient nonlinear solution of elasto-viscoplastic deformation problems. This nonlinear boundary-value problem is discretized by adaptive finite element methods. The automated h-adaptive mesh refinements are driven by error indicators, based on selected principal variables in the problem (stresses, non-elastic strains, damage, etc.). In the time domain, adaptive time-stepping is used, combined with a predictor-corrector time marching algorithm. The time selection is controlled by required time accuracy. In order to take into account strong temperature dependency of material parameters, the nonlinear structural solution a coupled with thermal analyses (one-way coupling). Several test examples illustrate the importance and benefits of adaptive mesh refinements in accurate prediction of damage levels and failure time.
机译:本文提出了一种自适应有限元方法在低周连续损伤建模和高温部件寿命预测中的应用。主要目标是通过自适应网格细化和自适应时间步长方法,为受损区域提供自动化和准确的建模。损伤建模方法是通过将损伤演化嵌入弹塑性粘塑性变形问题的瞬态非线性解中来实现的。该非线性边值问题通过自适应有限元方法离散化。基于问题中选定的主要变量(应力,非弹性应变,损坏等),由误差指示器驱动自动h自适应网格细化。在时域中,使用自适应时间步长,并结合预测器-校正器时间行进算法。时间选择由所需的时间精度控制。为了考虑材料参数对温度的强烈依赖性,将非线性结构解与热分析耦合(单向耦合)。几个测试示例说明了自适应网格细化在准确预测损坏程度和失效时间方面的重要性和益处。

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