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Experimental Study of Interior Glass Fiber-Reinforced Polymer-Reinforced Concrete Slab-Column Connections under Lateral Cyclic Load

机译:侧向循环荷载作用下室内玻璃纤维增​​强聚合物混凝土板-柱连接的试验研究

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The feasibility of using fiber-reinforved polymers (PRPs) as internal reinforcement for a totally reinforced concrete (RC) structure immune to corrosion essentially pertains to strength, stiffness, and deformation capacity in resisting seismic loads has become questionable. Nevertheless, no experiments have yet been conducted on the punching-shear behavior of FRP-reinforced concrete (FRP-RC) slab-column connections subjected to lateral reversal cyclic loading. Consequently, current FRP-RC design guidelines and codes in North America contain no seismic provisions. This has been the main impetus to conduct the ,first-ever experimental study on the punching shear behavior of glass-FRP (GFRP) slab-column connections under the combination of gravity and lateral reversed cyclic loading. Four full-scale interior slab-column connections were constructed and tested to investigate the influence of flexural-reinforrement type (GFRP and steel bars), reinforcement ratio, and gravity load intensity on the punching shear performance. All test specimens were identical and measured 2500 x 2500 mm with a thickness of 200 mm. A column measuring 300 x 300 mm extended 700 mm at its center above and below the slab surfaces. The results revealed that the GFRP-RC specimens possessed adequate strength and deformation capacity against punching-shear failure during and after reserved lateral cyclic-load conditions. The GFRP-RC specimens achieved lateral interstory drift capacities over 1.50% satisfying the limits in CSA A23.3 and ACI 421.3R. The GFRP-RC specimens also had adequate drift-ductility indexes, dissipated energy, and connection stiffness. Moreover; the GFRP bar strains at the ultimate lateral-drift ratio were less than the guaranteed tensile strength by 42%. No rupture of the GFRP bars and bond failure or slip were observed during the test.
机译:对于抗腐蚀的全增强混凝土(RC)结构,使用纤维增强聚合物(PRP)作为内部增强材料的可行性基本上涉及强度,刚度和抵抗地震载荷的变形能力。然而,尚未对承受横向反向循环荷载的FRP增强混凝土(FRP-RC)板-柱连接的冲剪性能进行实验。因此,北美当前的FRP-RC设计指南和规范中没有抗震规定。这是在重力和侧向反向循环荷载作用下进行玻璃纤维增​​强玻璃纤维板(FRP)平板-柱连接的冲切剪切性能的首次实验研究。构造并测试了四个完整的内部平板-柱连接,以研究抗弯加固类型(GFRP和钢筋),配筋率和重力载荷强度对冲剪性能的影响。所有测试样品都是相同的,尺寸为2500 x 2500 mm,厚度为200 mm。 300 x 300 mm的圆柱在其平板表面上方和下方的中心延伸700 mm。结果表明,GFRP-RC试件在预留的横向循环载荷条件下和之后都具有足够的强度和抗冲剪破坏的变形能力。 GFRP-RC标本达到了超过1.50%的横向层间漂移能力,满足了CSA A23.3和ACI 421.3R的要求。 GFRP-RC样品还具有足够的漂移-延展性指标,耗散的能量和连接刚度。此外;极限横向漂移比下的GFRP钢筋应变比保证的抗拉强度小42%。在测试过程中未观察到GFRP条断裂和粘结失败或打滑。

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