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Effect of structurally-induced lateral confinement on split Hopkinson pressure bar test specimens of concrete-like materials

机译:结构诱导的横向限制对混凝土材料分裂霍普金森压杆试样的影响

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摘要

In dynamic testing of concrete-like materials, there is a need in distinguishing structural effects from genuine strain-rate effects. In this paper, this generic problem is studied by numerical simulations based on a phenomenological material model available in the commercial finite element (FE) code Abaqus. The numerical results show that the increase of the dynamic increase factor (DIF) with the increase of strain-rate in concrete-like materials in a Split Hopkinson Pressure Bar (SHPB) test is a phenomenon related not only to material strain-rate effects but also to structural effects. It was found that dilation, surface friction and lateral inertia cause lateral confinement, which enhances DIF when the strain-rate is greater than a transition strain-rate in the order of 102 s−1. Although, genuine strain-rate effect may exist as suggested by meso-scale simulations in previous investigations, the findings in this study show that structural effects have a significant contribution to the increase of DIF, and therefore, it is necessary to correctly calibrate existing phenomenological models and interpret the results obtained from split Hopkinson pressure bar (SHPB) tests.
机译:在混凝土材料的动态测试中,需要在真正的应变率效应中区分结构效应。在本文中,通过基于商业有限元(FE)代码ABAQUS中可用的现象学材料模型进行了数值模拟研究了该通用问题。数值结果表明,在分裂霍普金森压力棒(SHPB)测试中,在混凝土材料中的应变率增加的动态增加因子(DIF)的增加是不仅与材料应变率效应相关的现象,但是也是结构效应。发现扩张,表面摩擦和横向惯性导致横向限制,当应变率大于102S-1时的过渡应变率时增强DIF。尽管如前所述,如先前的调查中的中间规模模拟所提出的真正应变率效应,但该研究中的研究结果表明,结构效应对DIF的增加具有显着贡献,因此,有必要正确校准现有的现有现象学模型和解释从拆分霍普金森压力条(SHPB)测试中获得的结果。

著录项

  • 作者

    E.A. Flores-Johnson; Q.M. Li;

  • 作者单位
  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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