Jankowiak Tomasz, Rusinek Alexis, Voyiadjis George Z
Institute of Structural Analysis, Poznan University of Technology, Piotrowo 5, 60-965 Poznań, Poland.
Laboratory of Microstructure Studies and Mechanics of Materials, UMR-CNRS 7239, Lorraine University, 7 rue Félix Savart, BP 15082, 57073 Metz Cedex 03, France.
Materials (Basel). 2020 May 10;13(9):2191. doi: 10.3390/ma13092191.
This paper presents an analytical prediction coupled with numerical simulations of a split Hopkinson pressure bar (SHPB) that could be used during further experiments to measure the dynamic compression strength of concrete. The current study combines experimental, modeling and numerical results, permitting an inverse method by which to validate measurements. An analytical prediction is conducted to determine the waves propagation present in SHPB using a one-dimensional theory and assuming a strain rate dependence of the material strength. This method can be used by designers of new SPHB experimental setups to predict compressive strength or strain rates reached during tests, or to check the consistencies of predicted results. Numerical simulation results obtained using LS-DYNA finite element software are also presented in this paper, and are used to compare the predictions with the analytical results. This work focuses on an SPHB setup that can accurately identify the strain rate sensitivities of concrete or brittle materials.
本文提出了一种结合数值模拟的解析预测方法,用于分析可在后续实验中测量混凝土动态抗压强度的分离式霍普金森压杆(SHPB)。当前研究结合了实验、建模和数值结果,采用了一种逆方法来验证测量结果。通过一维理论并假设材料强度与应变速率相关,进行了解析预测以确定SHPB中存在的波传播情况。新的SHPB实验装置的设计人员可以使用此方法来预测测试过程中达到的抗压强度或应变速率,或检查预测结果的一致性。本文还给出了使用LS-DYNA有限元软件获得的数值模拟结果,并用于将预测结果与解析结果进行比较。这项工作聚焦于一种能够准确识别混凝土或脆性材料应变速率敏感性的SHPB装置。