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Mesoscale modelling of concrete under high strain rate tension with a rate-dependent cohesive interface approach

机译:高应变速率张力下混凝土的中尺度建模,采用速率依赖的粘结界面方法

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摘要

This paper presents the investigation of the dynamic behaviour of concrete material under high strain rate tension using an interface approach in a mesoscale model framework. A rate-dependent cohesive constitutive description is introduced into the mesoscale framework to account for the effects of viscosity occurring in the dynamic fracture process. An algorithm is developed to insert cohesive elements throughout the mesoscale mesh grids in a concrete specimen, and to identify the cohesive element properties based on the original mesoscale structure. After parameter studies in terms of the cohesive element properties, the proposed model is validated against representative experimental data. The model is then employed to investigate the dynamic tensile behaviour of concrete under high strain rates. The underlying mechanisms of the dynamic tensile strength increase of concrete, including the influence of viscous effect from rate-dependent material description, the inertial effect from cracking and the material heterogeneity, are discussed and identified respectively. Results demonstrate that the viscous effect should be incorporated into the cohesive constitutive law to account for the Stefan effect at low and moderate strain rates and the micro-crack inertial effect only plays a significant role at a relatively high strain rate. Material heterogeneity does influence the strength enhancement under dynamic loading and the significance of this effect increases with the strain rate.
机译:本文采用介观模型框架中的界面方法,研究了高应变速率张力下混凝土材料的动力特性。将速率相关的粘性本构描述引入到中尺度框架中,以说明在动态断裂过程中发生的粘度影响。开发了一种算法,可以在混凝土标本的整个中尺度网格中插入粘结元素,并基于原始的中尺度结构识别粘结元素属性。在根据内聚元素特性进行参数研究之后,针对代表性实验数据对所提出的模型进行了验证。然后将该模型用于研究高应变速率下混凝土的动态拉伸行为。讨论并确定了混凝土动态抗拉强度增加的基本机理,包括速率相关材料描述对粘滞效应的影响,开裂引起的惯性效应和材料异质性的影响。结果表明,粘滞效应应纳入内聚本构定律,以说明中低应变率下的Stefan效应,而微裂纹惯性效应仅在较高应变率下才起重要作用。材料异质性的确会影响动态载荷下的强度增强,并且这种影响的重要性随着应变率的增加而增加。

著录项

  • 来源
    《International journal of impact engineering》 |2020年第5期|103500.1-103500.15|共15页
  • 作者

  • 作者单位

    Loughborough Univ Wolfson Sch Mech Elect & Mfg Engn Loughborough LE11 3TU Leics England;

    Univ Manchester Sch Engn Dept Mech Aerosp & Civil Engn Manchester M13 9PL Lancs England|Univ Liverpool Sch Architecture Liverpool L69 7ZN Merseyside England;

    Univ Edinburgh Sch Engn Inst Infrastruct & Environm Edinburgh Midlothian Scotland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Concrete material; Dynamic tension; Heterogeneity; Mesoscale model; Cohesive element; Micro-inertial effect;

    机译:混凝土材料;动态张力异质性中尺度模型;粘结元件;微惯性效应;

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