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Mechanical properties and numerical modeling of Fabric Reinforced Cementitious Matrix (FRCM) systems for strengthening of masonry structures

机译:织物增强水泥基体系(FRCM)系统的力学性能和数值模型,用于增强砖石结构

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摘要

The behavior of single bricks and small masonry pillars strengthened by means of fabric reinforced cementitious matrix systems made with glass-fiber grids is discussed both from an experimental and numerical standpoint. A standard Push-pull double lap test is performed on three different series of experimental set-ups for reinforced single bricks and on masonry pillars, evaluating the role played by the anchorage length on the overall behavior of the strengthened system. Standard Italian bricks with very good mechanical properties are used, in order to evaluate the ultimate strength of the grid for delamination within the mortar. The masonry pillar is built with 3 bricks spaced out by two thick mortar joints. When dealing with the single bricks, three different anchorage lengths were tested, equal to 5,10 and 15 cm, in order to evaluate the reduction of the ultimate strength induced by an insufficient anchorage. To suitably interpret experimental results, both a newly developed analytical-numerical approach and a recently presented 3D FEM model were utilized to have an insight into experimental results. In the analytical-numerical approach only the glass-fiber grid was considered and modeled by means of 1D Finite Elements interacting with the surrounding mortar by means of interfaces exhibiting a nonlinear stress-slip behavior deduced from experimental data. The 3D model uses 8-noded rigid elements interconnected by inelastic interfaces exhibiting softening. The incremental non-linear problem is solved by means of a robust Sequential Quadratic Programming routine already tested on medium and large scale examples with softening materials. The grid is modeled through non-linear truss elements, interacting with surrounding mortar by means of non-linear interfa-cial tangential stresses. Stress-slip behavior of the interface between the mortar and the textile is deduced through ad hoc experimentation conducted on a mortar specimen reinforced with a single yarn and subjected to a standard tensile test. Good agreement was found between experimental evidences and numerical simulations, meaning that the combined approach proposed may be considered as reference for design considerations.
机译:从实验和数值的角度讨论了通过用玻璃纤维格栅制成的织物增强水泥基体系增强的单砖和小砌体柱的性能。在三个不同系列的加固单砖和砌石柱上进行了标准的推拉双搭接测试,评估了锚固长度对加固系统整体性能的影响。为了评估砂浆内分层的网格的极限强度,使用了具有良好机械性能的标准意大利砖。砖石柱子由3块砖砌成,并由两个厚实的砂浆缝隔开。当处理单块砖时,测试了三种不同的锚固长度,分别等于5,10和15 cm,以评估锚固不足导致的极限强度降低。为了适当地解释实验结果,新开发的分析数值方法和最近提出的3D FEM模型都可以用来洞察实验结果。在分析数值方法中,仅考虑玻璃纤维网格并通过与周围砂浆相互作用的一维有限元进行建模,该有限元通过界面呈现出从实验数据得出的非线性应力-滑动行为,从而与周围的砂浆相互作用。 3D模型使用通过软化的非弹性界面互连的8节点刚性元素。通过已经在软质材料的中型和大型示例上进行测试的强大的顺序二次编程例程,可以解决增量非线性问题。网格是通过非线性桁架单元建模的,并通过非线性界面切向应力与周围的砂浆相互作用。砂浆和纺织品之间的界面的应力-滑移行为是通过对用单纱增强的砂浆样品进行的临时实验得出的,并进行了标准拉伸试验。实验证据和数值模拟之间发现了很好的一致性,这意味着所提出的组合方法可以被认为是设计考虑的参考。

著录项

  • 来源
    《Composite Structures》 |2014年第1期|711-725|共15页
  • 作者单位

    Department of Architecture, Built Environment and Construction Engineering (ABC), Politecnico di Milano, Piazza Leonardo da Vinci 32. 20133 Milano, Italy;

    Department of Architecture, Built Environment and Construction Engineering (ABC), Politecnico di Milano, Piazza Leonardo da Vinci 32. 20133 Milano, Italy;

    Department of Architecture, Built Environment and Construction Engineering (ABC), Politecnico di Milano, Piazza Leonardo da Vinci 32. 20133 Milano, Italy;

  • 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

    Masonry; GF grid strengthening; Fabric Reinforced Cementitious Matrix FRCM; Non-linear behavior; Debonding;

    机译:石工;GF网格加强;织物增强水泥基FRCM;非线性行为;脱胶;

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