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3D FE limit analysis model for multi-layer masonry structures reinforced with FRP strips

机译:FRP筋加固多层砌体结构的3D FE极限分析模型

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摘要

A heterogeneous full 3D limit analysis model for the evaluation of collapse loads of FRP-reinforced multi-layer masonry structures loaded in- and out-of-plane is presented. Four-noded rigid infinitely resistant tetrahedrons are used to model bricks, stones and filler. Three-noded rigid infinitely resistant triangles are used to model FRP strips. Plastic dissipation is allowed only at the interfaces between adjoining elements, i.e. on mortar joints reduced to interfaces, on brick-brick interfaces and on filler. A possible dissipation at the interfaces between FRP triangles and masonry wedges is also considered in order to take into account, in an approximate but effective way, the possible delamination of the strips from the supports. Italian code CNR-DT200 formulas are used as a reference to evaluate peak interface tangential strength. While the delamination from the support can be modeled only in an approximate way within limit analysis, the aim of the paper is to accurately reproduce the change in the failure mechanism observed in experiments due to the introduction of strengthening elements. A 3D approach to model masonry is used in order to take into account both the real texture of the panels along the thickness (i.e. multi-layer regular and irregular texture, presence of internal filler, etc.) and the presence of FRP strips either at the extrados or at the intrados of the structural elements. Two numerical examples are critically analyzed, consisting of a two leaf thick masonry wall simply supported at three edges, reinforced at the extrados and subjected to uniform lateral pressure and a complex three-layer tuff masonry shear wall with cavities filled with mortar and reinforced with horizontal and diagonal FRP strips at both faces. For the first example analyzed, full sensitivity analyses varying both FRP-brick peak strength and filler mechanical properties have been conducted in order to evaluate the capabilities of the model proposed when varying constituent materials mechanical properties. An additional FE simulation conducted with a standard code is also discussed to validate the model. When dealing with the second example, full comparisons with experimental data available are reported. Comparisons with experimental evidence and alternative FE procedures confirm that the limit analysis approach proposed may represent a valuable tool for predicting failure mechanisms and collapse loads of complex 3D multi-layer masonry structures reinforced with FRP strips.
机译:提出了一种用于评估FRP加固的多层砌体结构在平面内和平面外荷载下的倒塌荷载的异构全3D极限分析模型。四节点刚性无限电阻四面体用于建模砖块,石头和填充物。三节点刚性无限抗力三角形用于建模FRP板。仅在相邻元件之间的界面处(即在缩小为界面的灰泥接缝处,砖-砖界面和填充物上)允许塑料消散。为了以近似但有效的方式考虑条带与支撑件的可能分层,还考虑了在FRP三角形和砌体楔之间的界面处可能发生的耗散。意大利代码CNR-DT200公式用作评估峰界面切线强度的参考。虽然只能在极限分析中以近似的方式对与支撑的分层进行建模,但本文的目的是准确地再现由于引入了加固元件而在实验中观察到的破坏机理的变化。为了考虑到沿厚度的面板的真实纹理(即多层规则和不规则纹理,内部填充物的存在等)以及FRP条带的存在,使用了3D方法对砖石进行建模。结构要素的外部或内部。严格分析了两个数值示例,其中包括一个两叶厚的砌体墙,该砌体墙简单地支撑在三个边缘处,在拱顶处进行加固,并承受均匀的侧向压力;一个复杂的三层凝灰岩砌体剪力墙,其中的空腔填充有砂浆,并水平加固两侧都有对角线玻璃钢带。对于所分析的第一个示例,已经进行了同时改变FRP砖峰值强度和填料机械性能的全灵敏度分析,以便评估在改变组成材料的机械性能时提出的模型的功能。还讨论了使用标准代码进行的其他有限元仿真,以验证模型。在处理第二个示例时,报告了与可用实验数据的完整比较。与实验证据和替代有限元分析程序的比较证实,提出的极限分析方法可能是预测用FRP筋加固的复杂3D多层砖石结构的破坏机理和倒塌荷载的有价值的工具。

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