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Seismic behavior of 3-D ECC beam-column connections subjected to bidirectional bending and torsion

机译:双向弯曲和扭转的3-D ECC梁柱连接的抗震性能

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Special moment resisting frames (SMF) are commonly used in low- and medium-rise buildings located in regions of high seismicity. Although adequate performance of this seismic force resisting system was observed in prior earthquakes in terms of protecting buildings from collapse, the formation of plastic hinges in the beams and columns causes irreparable damage to the beam-column connections. Recently, interest in using fiber-reinforced concrete (FRC) has been growing to enhance energy absorption capacity and damage tolerance of beam-column connections and other components in reinforced concrete (RC) buildings. Prior research has mostly focused on the application of steel FRC (SFRC) in 2-D beam-column connections. However, little is known about the performance of exterior beam-column connections that are usually subjected to more complex loading during an earthquake, involving bi-directional bending and torsion of the column. In addition to the loading, the geometry of the connection requires a more involved test setup (i.e., with an out-of-plane beam and proper boundary conditions). In this research, the use of engineered cementitious composites (ECC) in 3-D exterior beam-column connections is investigated experimentally to improve building seismic performance. ECC is a special class of high-performance fiber-reinforced cementitious composites (HPFRCC) that, compared to conventional concrete, exhibits higher tensile ductility, energy absorption and shear resistance, in addition to improved bond performance with reinforcing steel (rebar). To understand the performance of exterior beam-column connections under complex loading conditions, scaled 3-D specimens were constructed and tested under simulated seismic loads. To improve the performance of the connections, conventional RC was replaced with reinforced ECC (RECC) that extends from the panel zone to the adjoining beams and columns to cover the potential plastic hinge regions. This paper discusses the loading protocols, the test setup for 3-D exterior beam-column connections, and the improvement in the joint behavior with the application of RECC as compared to conventional RC. The results suggest that the efficient use of ECC in the potential plastic hinge regions can improve the capacity and damage tolerance of beam-column connections under realistic seismic loading conditions.
机译:特殊的抗弯框架(SMF)通常用于地震高发地区的中低层建筑。尽管在以前的地震中,这种抗震系统具有足够的性能,可防止建筑物倒塌,但在梁和柱中形成塑料铰链会对梁-柱连接造成不可挽回的损害。最近,人们对使用纤维增强混凝土(FRC)的兴趣日益增强,以提高能量吸收能力以及增强混凝土(RC)建筑中梁柱连接件和其他组件的破坏承受能力。先前的研究主要集中在钢FRC(SFRC)在二维梁柱连接中的应用。但是,对于外部梁-柱连接的性能了解甚少,外部梁-柱连接通常在地震期间承受更复杂的载荷,包括双向弯曲和圆柱扭转。除了负载外,连接的几何形状还需要更复杂的测试设置(即平面外光束和适当的边界条件)。在这项研究中,实验研究了工程胶结复合材料(ECC)在3D外部梁柱连接中的使用,以改善建筑物的抗震性能。 ECC是一类特殊的高性能纤维增强水泥基复合材料(HPFRCC),与传统混凝土相比,它具有更高的拉伸延展性,能量吸收和抗剪切性,此外还改善了与钢筋(钢筋)的粘结性能。为了了解复杂荷载条件下外部梁柱连接的性能,在模拟地震荷载下构建了比例缩放的3D样本并进行了测试。为了提高连接性能,传统的RC被增强的ECC(RECC)代替,该ECC从面板区域延伸到相邻的梁和柱,以覆盖潜在的塑料铰链区域。本文讨论了加载协议,3-D外部梁柱连接的测试设置以及与常规RC相比使用RECC改善接头性能的问题。结果表明,在潜在的塑料铰链区域中有效使用ECC可以提高在实际地震荷载条件下梁柱连接的承载能力和损伤容限。

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