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3D beam-column corner joints retrofitted with X-shaped FRP sheets attached via the EBROG technique

机译:通过EBROG技术连接的X形FRP板翻新的3D梁柱角节点

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Beam-column joints are fundamental structural components of a stable structure. Corner joints are more likely to fail due to their small size and inferior confinement. This calls for three-dimensional (3D) strengthening of corner joints with fiber reinforced polymer (FRP) sheets to improve the load carrying capacity and ductility of beam-column connections. The present study investigates the shear strength of non-seismic 3D corner joints lacking adequate transverse reinforcement in their joint panel but strengthened with carbon fiber reinforced polymer (CFRP) sheets. The externally bonded reinforcement on groove (EBROG) technique is used in the joints to delay the debonding of CFRP sheets off the concrete substrate. Maximum expected moment resistance of a beam/connection is typically obtained at the column interface. This, therefore, requires sufficient bonding strength provisioned between the FRP sheet and the concrete substrate over an acceptable range of the bonding length. Practical limitations, however, do not allow for enough length of the column interface to be strengthened. A new anchorage system of FRP fans is, therefore, provisioned to attain the required bonding strength. The results are verified by studying the hysteretic response of the 3D corner joints strengthened via the proposed EBROG method and with the provisioned FRP fans. For this purpose, six half-scale 3D joint specimens were constructed and subjected to relevant tests. The specimens included a control, one reference specimen that satisfied the current building codes, and four FRP-retrofitted specimens with X-shaped strengthening patterns. The results revealed that the proposed strengthening pattern prevented joint shear failure. Furthermore, the proposed EBROG technique outperformed the externally bonded reinforcement (EBR) techniques as evidenced by the higher values of maximum load-carrying capacity and ductility recorded by the joint while CFRP debonding off the concrete substrate was also delayed. Maximum loading led to a drift ratio of 4.5%, indicating that application of the EBROG technique combined with FRP fans inhibited load reductions throughout the test period.
机译:梁柱节点是稳定结构的基本结构组成部分。角接缝由于其尺寸较小和限制条件较弱而更有可能发生故障。这就要求使用纤维增强聚合物(FRP)片材对角部接头进行三维(3D)加固,以提高梁柱连接的承载能力和延展性。本研究调查了非地震3D角接缝的抗剪强度,这些角接缝在接缝面板中没有足够的横向增强,但用碳纤维增强聚合物(CFRP)板增强了抗剪强度。接缝中采用外部粘结的沟槽加固(EBROG)技术,以延迟CFRP板从混凝土基材上的脱粘。通常在柱界面处获得梁/连接件的最大预期抗弯矩。因此,这需要在粘合长度的可接受范围内在FRP片和混凝土基材之间提供足够的粘合强度。但是,实际的限制并不允许足够长的列界面长度得到加强。因此,提供了一种新的玻璃钢风扇固定系统,以达到所需的粘合强度。通过研究通过建议的EBROG方法和配备的FRP风扇加强的3D角部接头的滞后响应,可以验证结果。为此,构建了六个半比例的3D关节标本,并进行了相关测试。这些标本包括一个对照,一个满足当前建筑规范的参考标本以及四个具有X形加固样式的FRP翻新标本。结果表明,所提出的加固方式可防止接头剪切破坏。此外,所提出的EBROG技术优于外部粘结增强(EBR)技术,这是由接头记录的较高的最大承载能力和延性值所证实的,而CFRP从混凝土基材上脱胶的时间也有所延迟。最大负载导致4.5%的漂移率,这表明将EBROG技术与FRP风扇结合使用可抑制整个测试期间的负载降低。

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