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Incorporation of gradient-enhanced microplane damage model into isogeometric analysis

机译:将梯度增强的微层损伤模型掺入异步测定分析

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摘要

PurposeThis study aims to develop a new analysis approach devised by incorporating a gradient-enhanced microplane damage model (GeMpDM) into isogeometric analysis (IGA), which shows computational stability and capability in accurately predicting crack propagations in structures with complex geometries.Design/methodology/approachFor the non-local microplane damage modeling, the maximum modified von-Mises equivalent strain among all microplanes is regularized as a representative quantity. This characterization implies that only one additional governing equation is considered, which improves computational efficiency dramatically. By combined use of GeMpDM and IGA, quasi-static and dynamic numerical analyses are conducted to demonstrate the capability in predicting crack paths of complex geometries in comparison to FEM and experimental results.FindingsThe implicit scheme with the adopted damage model shows favorable numerical stability and the numerical results exhibit appropriate convergence characteristics concerning the mesh size. The damage evolution is successfully controlled by a tension-compression damage factor. Thanks to the advanced geometric design capability of IGA, the details of crack patterns can be predicted reliably, which are somewhat difficult to be acquired by FEM. Additionally, the damage distribution obtained in the dynamic analysis is in close agreement with experimental results.Originality/valueThe paper originally incorporates GeMpDM into IGA. Especially, only one non-local variable is considered besides the displacement field, which improves the computational efficiency and favorable convergence characteristics within the IGA framework. Also, enjoying the geometric design ability of IGA, the proposed analysis method is capable of accurately predicting crack paths reflecting the complex geometries of target structures.
机译:目的研究旨在通过将梯度增强的微代损伤模型(GEMPDM)掺入异常分析(IGA)中,开发一种新的分析方法,该分析方法显示了ISoGeometric分析(IGA),其表示准确地预测具有复杂几何形状的结构中的裂纹传播的计算稳定性和能力.Design/Methodology/对于非局部微板损伤建模,所有微晶间的最大改性的VONMES等同应变为代表性数量。该表征意味着考虑只考虑一个额外的控制方程,从而显着提高了计算效率。通过组合使用GEMPDM和IGA,进行准静态和动态数值分析,以证明与FEM和实验结果相比,预测复杂几何形状的裂纹路径的能力。采用采用损伤模型的隐含方案显示了有利的数值稳定性数值结果表现出关于网格尺寸的适当收敛特性。损坏的进化是由张力压缩损伤损伤的张力控制。由于IGA的先进几何设计能力,可以可靠地预测裂缝图案的细节,这有一些难以通过FEM获取。另外,在动态分析中获得的损伤分布与实验结果密切一致。原始/ valsethe纸最初将Gempdm纳入IgA。特别地,除了位移场之外,只考虑一个非局部变量,这提高了IGA框架内的计算效率和有利的收敛特性。而且,享受IGA的几何设计能力,所提出的分析方法能够精确地预测反映目标结构的复杂几何形状的裂纹路径。

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