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Multiscale analysis of out-of-plane masonry elements using different structural models at macro and microscale

机译:使用不同结构模型在宏观和微观尺寸的平面外砌体元素的多尺度分析

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摘要

A novel two-scale modeling approach, linking different structural models at macro and microscale, is proposed to describe response of masonry walls with periodic texture. At the higher macroscopic scale, the real heterogeneous material is modeled as a homogenized medium, considering the classical Mindlin-Reissner theory for flat shells. At the lower microscopic scale, a representative masonry Unit Cell (UC), accounting for the actual geometry, arrangement and nonlinear behavior of constituent materials, is analyzed in detail by resorting to a three-dimensional Cauchy model. The UC is modeled as the assembly of elastic bricks and nonlinear zero-thickness interfaces, in which the sliding frictional and damaging mechanisms are concentrated. To perform the macro-micro information transition a proper kinematic map is defined, whereas the upscaling process is performed via a homogenization procedure based on the Transformation Field Analysis (TFA), properly extended to the case of interfaces. The developed homogenization procedure invokes a generalized Hill-Mandel principle and requires to satisfy 'non-standard' constraints at the microlevel, for which the perturbed Lagrangian method is employed.Numerical applications are performed to prove the model efficiency in describing the response of a running bond UC subjected to in-plane and out-of-plane loads. Special attention is devoted to the analysis of shell bending and shear behavior, comparing the results obtained with the proposed model with those recovered by detailed micromechanical analyses. (C) 2020 Elsevier Ltd. All rights reserved.
机译:提出了一种新颖的两种模型建模方法,在宏和微观上连接不同的结构模型,以描述具有周期性纹理的砖石墙的响应。在较高的宏观尺度下,考虑到扁平壳的经典思维 - 重新发言理论,真正的异质材料被建模为均质化培养基。在较低的微观尺度下,通过借助于三维Cauchy模型详细分析了代表性砌体单元电池(UC),占构成材料的实际几何形状,布置和非线性行为。 UC被建模为弹性砖和非线性零厚界面的组装,其中浓缩滑动摩擦和损坏机制。为了执行宏观微信息转换,定义了适当的运动图,而​​通过基于变换场分析(TFA)来执行Upscoping过程,正确扩展到接口的情况。开发的均匀化程序调用了广义的山形伪造原则,并要求满足在MicroLevel上的“非标准”约束,其中采用了扰动拉格朗日方法。执行扰动拉格朗日方法以证明模型效率来描述跑步的响应粘合UC经受面内和面外负载。特别注意壳弯曲和剪切行为的分析,比较了所提出的模型获得的结果,其中通过详细的微机械分析回收的结果。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Computers & Structures 》 |2021年第4期| 106477.1-106477.20| 共20页
  • 作者单位

    Sapienza Univ Rome Dept Struct & Geotech Engn Via Eudossiana 18 I-00184 Rome Italy;

    Sapienza Univ Rome Dept Struct & Geotech Engn Via Eudossiana 18 I-00184 Rome Italy;

    Sapienza Univ Rome Dept Struct & Geotech Engn Via Eudossiana 18 I-00184 Rome Italy;

    Univ Naples Federico II Dept Struct Engn & Architecture Via Claudio 21 I-80125 Naples 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

    Multiscale model; Thick shell; Masonry; Damage-friction; 3D RVE; TFA approach;

    机译:多尺度模型;厚壳;砌体;损伤 - 摩擦;3D RVE;TFA方法;
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