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On Multiscale Modeling: Preserving Energy Dissipation across the Scales with Consistent Handshaking Methods

机译:关于多尺度建模:使用一致的握手方法在各个尺度上保持能量耗散

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A mesh objective crack band model was implemented within the generalized method of cells micromechanics theory. This model was linked to a macroscale finite element model to predict post-peak strain softening in composite materials. Although a mesh objective theory was implemented at the microscale, it does not preclude pathological mesh dependence at the macroscale. To ensure mesh objectivity at both scales, the energy density and the energy release rate must be preserved identically across the two scales. This requires a consistent characteristic length or localization limiter. The effects of scaling (or not scaling) the dimensions of the microscale repeating unit cell (RUC), according to the macroscale element size, in a multiscale analysis was investigated using two examples. Additionally, the ramifications of the macroscale element shape, compared to the RUC, was studied.
机译:网格客观裂纹带模型是在细胞微力学理论的广义方法内实现的。该模型与宏观有限元模型相关联,以预测复合材料中的峰后应变软化。尽管网格目标理论是在微观尺度上实现的,但它并不排除宏观尺度上病理性网格划分的依赖性。为了在两个比例尺上确保网格的客观性,必须在两个比例尺上保持相同的能量密度和能量释放速率。这需要一致的特征长度或定位限制器。使用两个示例研究了在多尺度分析中根据宏观元素大小按比例缩放(或不按比例缩放)微尺度重复单位单元(RUC)尺寸的影响。此外,与RUC相比,研究了宏观元素形状的变化。

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