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Seismic performance of a novel self-sustaining beam-column connection for precast concrete moment-resisting frames

机译:用于预制混凝土旋转框架的新型自维持梁柱连接的地震性能

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摘要

In this paper, a novel prefabricated reinforced concrete (PC) self-sustaining beam-column connection for moment-resisting frames was developed to achieve the targets of short erection time, high construction efficiency, low-cost and satisfactory seismic performance. The connection design eliminates the need of temporary supports for the PC beams and slabs during the assembly process in site, and reduces the amount of lateral supports for PC multi-storey columns and formwork for cast-in-place concrete. As the designed thickness of PC U-shells at the beam ends was about 1/3 of the beam width, there could be a marked effect on the achieved integrity of such connections, especially under seismic loading. To investigate the seismic performance of this PC connection, five large-scale PC self-sustaining beam-column connections specimens and one reference conventional RC connection were designed and tested under reverse cyclic loading. The WA parameters included the length and area of the flexural reinforcing bars placed at the bottom of PC U-shells, and the anchorage measures (stirrups) inside the PC U-shell. The five precast specimens exhibited similar crack distributions and failure patterns due to the gap-opening between the PC beams and column surface, which was attributed to the reduced effective width and depth of beam cross-section. The WA results showed that the use of longer flexural reinforcing bars had little influence on the load-carrying capacity, but contributed to the initial stiffness and energy dissipation capacity. The load-carrying capacity increased by 24% when the area of flexural reinforcing bars increased by 50% in the U-shell region. The incorporation of stirrups in the overlapping region of beam flexural reinforcing bars and longitudinal rebars improved their bond-slip behaviour in specimen PC-S. Compared with specimen PC-C, the energy dissipation capacity of specimen PC-S was improved by 16.5%. Finally, the failure pattern and load- carrying capacity of the PC specimens were analysed and discussed using a simplified mechanical model.
机译:在本文中,开发了一种新型预制钢筋混凝土(PC)用于力矩抵抗框架的自维持光束柱连接,实现了短暂安装时间,高建效率,低成本和令人满意的地震性能的目标。连接设计消除了在站点的组装过程中对PC梁和板坯的临时支撑的需要,并减少了PC多层柱的横向支撑量和用于就地混凝土的模板。由于光束端部的PC U形壳的设计厚度约为光束宽度的1/3,因此可能对这种连接的完整性有明显的影响,尤其是在地震载荷下。为了调查这种PC连接的地震性能,在反向循环加载下设计并测试了五个大型PC自维持光束柱连接标本和一个参考常规RC连接。 WA参数包括放置在PC U形壳底部的弯曲加强杆的长度和面积,以及PC U形壳内的锚固措施(搅拌器)。由于PC束和柱表面之间的间隙开口,这五个预制样品表现出类似的裂缝分布和故障模式,这归因于横梁横截面的有效宽度和深度。 WA结果表明,使用较长的弯曲加强杆对承载能力影响不大,但有助于初始刚度和能量耗散能力。当弯曲加强杆面积在U形壳区域增加50%时,承载能力增加了24%。在梁弯曲加强杆和纵向钢筋重叠区域中掺入搅拌器和纵向钢筋在样本PC-S中改善了它们的粘合性能。与标本PC-C相比,样品PC-S的能量耗散能力提高了16.5%。最后,分析了PC样本的故障模式和负载容量,并使用简化的机械模型讨论。

著录项

  • 来源
    《Engineering Structures》 |2020年第1期|111096.1-111096.16|共16页
  • 作者单位

    Southeast Univ Sch Civil Engn Key Lab Concrete & Prestressed Concrete Struct Minist Educ Nanjing 210096 Peoples R China|Southeast Univ Lab Industrialized Struct & Bridge Engn Jiangsu P Nanjing 210096 Peoples R China;

    Southeast Univ Sch Civil Engn Key Lab Concrete & Prestressed Concrete Struct Minist Educ Nanjing 210096 Peoples R China|Southeast Univ Lab Industrialized Struct & Bridge Engn Jiangsu P Nanjing 210096 Peoples R China;

    Southeast Univ Sch Civil Engn Key Lab Concrete & Prestressed Concrete Struct Minist Educ Nanjing 210096 Peoples R China|Southeast Univ Lab Industrialized Struct & Bridge Engn Jiangsu P Nanjing 210096 Peoples R China;

    Southeast Univ Sch Civil Engn Key Lab Concrete & Prestressed Concrete Struct Minist Educ Nanjing 210096 Peoples R China|Southeast Univ Lab Industrialized Struct & Bridge Engn Jiangsu P Nanjing 210096 Peoples R China;

    Univ Edinburgh Sch Engn Inst Infrastruct & Environm Edinburgh EH9 3JL 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

    Precast concrete; Beam-column connection; Self-sustaining connection; Large-scale experiment; Seismic performance; Mechanical model;

    机译:预制混凝土;梁柱连接;自我维持连接;大规模实验;地震性能;机械模型;

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