用工程水泥基复合材料覆盖层加固的砌体墩-梁下部结构的循环试验

IF 3.8 2区 工程技术 Q2 ENGINEERING, GEOLOGICAL
Tong Li, Wei Zhang, Zhengtao Qiu, Shuo Yang, Yangxi Zhang, Mingke Deng
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引用次数: 0

摘要

本文通过实验研究了使用工程水泥基复合材料(ECC)加固的穿孔砌体墙(墩-墩-墩)的平面抗震行为。研究人员制备了一个未加固砌体(URM)试件和两个 ECC 加固砌体子结构,并对其施加了伪静力循环侧向荷载。比较并讨论了三种试样的破坏模式、滞回曲线、强度、变形性、刚度和耗能能力。结果表明,ECC 层改善了砌体墩-支撑下部结构的破坏模式,砌体墩的剪切破坏转变为弯曲破坏。在 ECC 覆盖层表面观察到多条细裂缝。此外,外部 ECC 层有效提高了下部结构的承载能力和极限变形,强度和极限位移分别提高了 104% 和 72%。最后,ECC 覆盖层还具有优异的消能能力,可提高砌体结构在强震作用下的抗倒塌能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Experimental cyclic testing of masonry pier-spandrel substructures reinforced with engineered cementitious composites overlay

Experimental cyclic testing of masonry pier-spandrel substructures reinforced with engineered cementitious composites overlay

This paper experimentally investigated the in-plane seismic behavior of perforated masonry walls (pier-spandrel substructures) retrofitted using engineered cementitious composites (ECC). One unreinforced masonry (URM) specimen and two ECC-reinforced masonry substructures were prepared and subjected to pseudostatic cyclic lateral loads. The failure mode, hysteretic curves, strength, deformability, stiffness, and energy dissipation capacity of three specimens were compared and discussed. The results revealed that the failure pattern of masonry pier-spandrel substructure was improved by the ECC layer with shear failure of masonry piers changing to bending failure. Multiple thin cracks were observed on the surface of ECC overlay. Moreover, the external ECC layer effectively increased the load-carrying capacity and ultimate deformation of the substructures, with maximum increases of 104% in strength and 72% in ultimate displacement, respectively. Finally, the excellent energy dissipation capacity was obtained by ECC overlay, which can improve the collapse resistance of masonry structures subjected to strong earthquake action.

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来源期刊
Bulletin of Earthquake Engineering
Bulletin of Earthquake Engineering 工程技术-地球科学综合
CiteScore
8.90
自引率
19.60%
发文量
263
审稿时长
7.5 months
期刊介绍: Bulletin of Earthquake Engineering presents original, peer-reviewed papers on research related to the broad spectrum of earthquake engineering. The journal offers a forum for presentation and discussion of such matters as European damaging earthquakes, new developments in earthquake regulations, and national policies applied after major seismic events, including strengthening of existing buildings. Coverage includes seismic hazard studies and methods for mitigation of risk; earthquake source mechanism and strong motion characterization and their use for engineering applications; geological and geotechnical site conditions under earthquake excitations; cyclic behavior of soils; analysis and design of earth structures and foundations under seismic conditions; zonation and microzonation methodologies; earthquake scenarios and vulnerability assessments; earthquake codes and improvements, and much more. This is the Official Publication of the European Association for Earthquake Engineering.
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