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Computational Micro-Macro Analysis of Impact on Strain-Hardening Cementitious Composites (SHCC) Including Microscopic Inertia

机译:对包括微观惯性的应变硬化水泥复合材料(SHCC)的影响计算微米宏观分析

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摘要

This paper presents a numerical two-scale framework for the simulation of fiber reinforced concrete under impact loading. The numerical homogenization framework considers the full balance of linear momentum at the microscale. This allows for the study of microscopic inertia effects affecting the macroscale. After describing the ideas of the dynamic framework and the material models applied at the microscale, the experimental behavior of the fiber and the fiber–matrix bond under varying loading rates are discussed. To capture the most important features, a simplified matrix cracking and a strain rate sensitive fiber pullout model are utilized at the microscale. A split Hopkinson tension bar test is used as an example to present the capabilities of the framework to analyze different sources of dynamic behavior measured at the macroscale. The induced loading wave is studied and the influence of structural inertia on the measured signals within the simulation are verified. Further parameter studies allow the analysis of the macroscopic response resulting from the rate dependent fiber pullout as well as the direct study of the microscale inertia. Even though the material models and the microscale discretization used within this study are simplified, the value of the numerical two-scale framework to study material behavior under impact loading is demonstrated.
机译:本文介绍了在冲击载荷下模拟纤维钢筋混凝土的数值二维框架。数值均匀化框架考虑了微尺度线性动量的完整平衡。这允许研究影响宏观的微观惯性效应。在描述了动态框架的思想和在微尺度施加的材料模型之后,讨论了纤维和纤维 - 基质键的实验行为在不同的加载率下进行。为了捕获最重要的特征,在微尺度下使用简化的矩阵裂化和应变速率敏感光纤拉出模型。拆分霍普金森张力杆测试用作介绍框架的能力,以分析在宏观上测量的不同动态行为的源。研究了诱导的负载波,验证了结构内结构惯性对测量信号的影响。进一步的参数研究允许分析由速率依赖性纤维拔出产生的宏观反应以及微观惯性的直接研究。即使在简化了本研究中使用的材料模型和微观尺度的离散化,还证明了在冲击载荷下研究材料行为的数值二尺度框架的值。

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