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采用轻质外部连续复合绳索加固的全尺寸钢筋混凝土T型节点抗震试验——节点劣化与破坏评估

Seismic Tests of Full Scale Reinforced Concrete T Joints with Light External Continuous Composite Rope Strengthening-Joint Deterioration and Failure Assessment.

作者信息

Karabini Martha, Rousakis Theodoros, Golias Emmanouil, Karayannis Chris

机构信息

Laboratory of Reinforced Concrete and Seismic Design of Structures, Democritus University of Thrace, 67100 Xanthi, Greece.

Laboratory of Reinforced Concrete and Masonry Structures, Aristotle University of Thessaloniki, 54636 Thessaloniki, Greece.

出版信息

Materials (Basel). 2023 Mar 29;16(7):2718. doi: 10.3390/ma16072718.

Abstract

Beam-column connections (joints) are one of the most critical elements which govern the overall seismic behavior of reinforced concrete (RC) structures. Especially in buildings designed according to previous generation codes, joints are often encountered with insufficient transverse reinforcement detailing, or even with no stirrups, leading to brittle failure. Therefore, externally bonded composite materials may be applied, due to the ease of application, low specific weight and corrosion-free properties. The present work assesses the seismic performance of insufficiently reinforced large-scale T beam-column connections with large and heavily reinforced beams. The joints receive externally bonded NSM X-shaped composite ropes with improved versatile continuous detailing. The columns are subjected to low normalized axial load, while the free end of the beam is subjected to transverse displacement reversals. Different failure criteria are investigated, based on the beam free-end transverse load, as well as on the joint region shear deformations, to critically assess the structural performance of the subsystem. The experimental investigation concludes that cyclic loading has a detrimental effect on the performance of the joint. Absence of an internal steel stirrup leads to earlier deterioration of the joint. The unstrengthened specimens disintegrate at 2% drift, which corresponds to 34 mm beam-end displacement, and shear deformation of the joint equal to 30 × 10 rad. The composite strengthening, increases the structural performance of the joint up to 4% drift which corresponds to 68 mm of beam-end displacement and shear deformation of the joint equal to 10 × 10 rad. The investigated cases of inadequate existing transverse reinforcement in the joint and light external FRP strengthening provide a unique insight into the required retrofits to achieve different levels of post-yielding displacement ductility under seismic loading at 2%, 3% and 4% drift. It allows for future analytical refinements toward reliable redesign analytical models.

摘要

梁柱节点是控制钢筋混凝土(RC)结构整体抗震性能的最关键部件之一。特别是在按照前代规范设计的建筑物中,节点经常出现横向配筋不足的情况,甚至没有箍筋,从而导致脆性破坏。因此,由于应用方便、比重低且无腐蚀特性,可采用外部粘结复合材料。本文评估了梁配筋过大的大型T形梁柱节点配筋不足时的抗震性能。这些节点采用了具有改进通用连续细节的外部粘结NSM X形复合绳索。柱承受低归一化轴向荷载,而梁的自由端承受横向位移反向。基于梁自由端横向荷载以及节点区域剪切变形,研究了不同的破坏准则,以严格评估子系统的结构性能。试验研究得出结论,循环加载对节点性能有不利影响。内部没有钢箍筋会导致节点更早地劣化。未加固的试件在2%的位移延性时解体,这对应于梁端位移34mm,节点剪切变形等于30×10rad。复合加固将节点的结构性能提高到4%的位移延性,这对应于梁端位移68mm,节点剪切变形等于10×10rad。研究的节点现有横向配筋不足和轻度外部FRP加固的情况,为在2%、3%和4%位移延性的地震荷载下实现不同水平的屈服后位移延性所需的改造提供了独特的见解。这有助于未来对可靠的重新设计分析模型进行分析改进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1404/10096458/68f187e62233/materials-16-02718-g001.jpg

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