首页> 外文期刊>Journal of bridge engineering >Cyclic Response of Unbonded Posttensioned Precast Columns with Ductile Fiber-Reinforced Concrete
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Cyclic Response of Unbonded Posttensioned Precast Columns with Ductile Fiber-Reinforced Concrete

机译:韧性纤维混凝土无粘结后张预应力柱的循环响应

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摘要

A precast segmental concrete bridge pier system is being investigated for use in seismic regions. The proposed system uses unbonded posttensioning (UBPT) to join the precast segments and has the option of using a ductile fiber-reinforced cement-based composite (DRFCC) in the precast segments at potential plastic hinging regions. The UBPT is expected to cause minimal residual displacements and a low amount of hysteretic energy dissipation. The DFRCC material is expected to add hysteretic energy dissipation and damage tolerance to the system. Small-scale experiments on cantilever columns using the proposed system were conducted. The two main variables were the material used in the plastic hinging region segment and the depth at which that segment was embedded in the column foundation. It was found that using DFRCC allowed the system to dissipate more hysteretic energy than traditional concrete up to drift levels of 3-6%. Furthermore, DFRCC maintained its integrity better than reinforced concrete under high cyclic tensile-compressive loads. The embedment depth of the bottom segment affected the extent of microcracking and hysteretic energy dissipation in the DFRCC. This research suggests that the proposed system may be promising for damage-tolerant structures in seismic regions.
机译:预制分段混凝土桥墩系统正在研究中,以用于地震区域。拟议的系统使用无粘结后张紧(UBPT)来连接预制段,并且可以选择在潜在的塑料铰接区域的预制段中使用韧性纤维增强水泥基复合材料(DRFCC)。预计UBPT会导致最小的残余位移和少量的滞后能量耗散。预计DFRCC材料会增加磁滞能量耗散并损坏系统。使用该系统对悬臂柱进行了小型实验。两个主要变量是塑性铰区域段中使用的材料以及该段嵌入柱基础中的深度。结果发现,使用DFRCC可使系统耗散比传统混凝土更多的滞后能量,漂移水平可达3-6%。此外,在高周向拉伸压缩载荷下,DFRCC的完整性比钢筋混凝土更好。底部段的嵌入深度影响了DFRCC中的微裂纹程度和滞回能量耗散。这项研究表明,所提出的系统对于地震区域的容灾结构可能是有希望的。

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