吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (3): 746-757.doi: 10.13229/j.cnki.jdxbgxb.20241011
• 交通运输工程·土木工程 • 上一篇
Shuang-shuang JIN1,2(
),Shi-yu ZHOU2,Xiao WAN2,Jian-ting ZHOU1(
)
摘要:
基于耗能集中和可更换的设计理念,提出了一种外置可更换波纹钢板-内嵌钢管榫卯的预制节段拼装桥墩结构形式。为研究节段拼装桥墩的可更换性能,设计了外置波纹钢板、外置开孔波纹钢板两组预制节段桥墩模型试件,一组直接采用拟静力往复加载试验;另一组先进行低周疲劳加载,更换耗能钢板后再进行拟静力破坏试验。通过对比两组桥墩的破坏过程、耗能能力、承载力等评估桥墩的抗震性能及可更换性能。研究结果表明:与外置波纹钢板相比,外置开孔波纹钢板与其预埋件的设计承载力更为匹配,虽然削弱了钢板的强度和刚度,但其耗能能力更优;因桥墩底部耗能主要集中于外置耗能钢板,试验前、后底部混凝土节段未出现压溃破坏;外置开孔波纹钢板桥墩在设计目标偏移率下具有良好的可更换性能。
中图分类号:
| [1] | Tazarv M, Saiidi M S. Low-damage precast columns for accelerated bridge construction in high seismic zones[J]. Journal of Bridge Engineering, 2016, 21(3):No. 04015056. |
| [2] | 项贻强, 竺盛, 赵阳. 快速施工桥梁的研究进展[J]. 中国公路学报, 2018, 31(12): 1-27. |
| Xiang Yi-qiang, Zhu Sheng, Zhao Yang. Research progress on rapid construction bridges[J]. Chinese Journal of Highways, 2018,31(12): 1-27. | |
| [3] | Bao L S, Zhao J, Teng F, et al. Experimental study on the seismic performance of prefabricated frame piers[J]. Structures, 2023, 52: 651-665. |
| [4] | 王景全, 王震, 高玉峰, 等.预制桥墩体系抗震性能研究进展: 新材料、新理念、新应用[J]. 工程力学, 2019, 36(3): 1-23. |
| Wang Jing-quan, Wang Zhen, Gao Yu-feng, et al. Research progress on seismic performance of prefabricated bridge pier systems: new materials, new concepts, and new applications[J]. Engineering Mechanics, 2019, 36(3): 1-23. | |
| [5] | 周颖, 吴浩, 顾安琪. 地震工程:从抗震、减隔震到可恢复性[J]. 工程力学, 2019, 36(6): 1-12. |
| Zhou Ying, Wu Hao, Gu An-qi. Earthquake engineering: from earthquake resistance, isolation reduction to resilience[J]. Engineering Mechanics, 2019,36(6): 1-12. | |
| [6] | Mander J B, Cheng C T. Seismic resistance of bridge piers based on damage avoidance design[R]. Buffalo: US National Center for Earthquake Engineering Research, 1997. |
| [7] | Hewes J T, Priestley M J N. Seismic design and performance of precast concrete segmental bridge columns[R]. San Diego: University of California,2002. |
| [8] | Chou C C, Chen Y C. Cyclic tests of post‐tensioned precast CFT segmental bridge columns with unbonded strands[J]. Earthquake Engineering & Structural Dynamics, 2006, 35(2): 159-175. |
| [9] | 王文炜, 周畅, 薛彦杰, 等. 外置耗能钢板预制拼装桥墩抗震性能研究[J]. 湖南大学学报:自然科学版, 2020, 47(9): 57-68. |
| Wang Wen-wei, Zhou Chang, Xue Yan-jie, et al. Study on seismic performance of prefabricated assembled piers with external energy dissipation steel plates[J]. Journal of Hunan University(Natural Science Edition), 2020,47 (9): 57-68. | |
| [10] | Ou Y C, Tsai M S, Chang K C, et al. Cyclic behavior of precast segmental concrete bridge columns with high performance or conventional steel reinforcing bars as energy dissipation bars[J]. Earthquake Engineering & Structural Dynamics, 2010, 39(11): 1181-1198. |
| [11] | Ou Y C, Wang P H, Tsai M S, et al. Large-Scale experimental study of precast segmental unbonded posttensioned concrete bridge columns for seismic regions[J]. Journal of Structural Engineering, 2010, 136(3): 255-264. |
| [12] | Ou Y C, Pratiwi A Y, Song J. Pseudo dynamic testing and inelastic displacement ratios of self-centering precast concrete segmental bridge columns[J]. Journal of Structural Engineering, 2018, 144(9):No.04018158. |
| [13] | Eigawady M A, Sha'Lan A. Seismic behavior of self-centering precast segmental bridge bents[J]. Journal of Bridge Engineering, 2011, 16(3): 328-339. |
| [14] | 孙治国, 谷明洋, 司炳君, 等. 外置角钢摇摆-自复位双柱墩抗震性能分析[J]. 中国公路学报, 2017, 30(12): 40-49. |
| Sun Zhi-guo, Gu Ming-yang, Si Bing-jun, et al. Seismic performance analysis of rocking-self-centering double-column piers with external angle steel[J]. China Journal of Highways, 2017, 30(12): 40-49. | |
| [15] | Marriott D, Pampanin S, Palermo A. Biaxial testing of unbonded post‐tensioned rocking bridge piers with external replaceable dissipaters[J]. Earthquake Engineering & Structural Dynamics, 2011, 40(15):1723-1741. |
| [16] | Marriott D, Pampanin S, Palermo A. Quasi-static and pseudo-dynamic testing of unbonded post‐tensioned rocking bridge piers with external replaceable dissipaters[J]. Earthquake Engineering & Structural Dynamics, 2009, 38(3): 331-354. |
| [17] | Guerrini G, Restrepo J, Massari M, et al. Self-centering precast concrete dual-shell steel columns[C]∥Proceedings of the 15th World Conference on Earthquake Engineering, Lisbon, Portugal, 2012. |
| [18] | Guerrini G, Restrepo J, Schoettler M. Self-centering, low-damage, precast post-tensioned columns for accelerated bridge construction in seismic regions[C]∥Proc of 16th World Conf on Earthquake Engineering, Santiago, Chile, 2017. |
| [19] | 贾俊峰, 魏博, 欧进萍,等. 外置可更换耗能器的预制拼装自复位桥墩抗震性能试验研究[J]. 振动与冲击, 2021, 40(5): 154-162. |
| Jia Jun-feng, Wei Bo, Jin-ping Ou, et al. Experimental study on seismic performance of prefabricated assembled self-centering piers with external replaceable dampers[J]. Vibration and Impact, 2021, 40(5): 154-162. | |
| [20] | 赵建锋,刘雪飞,孟庆一,等. 外置可更换耗能装置的节段拼装CFST桥墩抗震性能分析[J]. 西南交通大学学报,2022,57(5):1113-1121, 1145. |
| Zhao Jian-feng, Liu Xue-fei, Meng Qing-yi, et al. Seismic performance analysis of segmental CFST piers with external replaceable energy dissipation devices[J]. Journal of Southwest Jiaotong University, 2022,57(5):1113-1121, 1145. |
| [1] | 史俊,徐略勤,金双双,贺洪滔,周建庭,柳杨青. 梭形双重约束防屈曲支撑的整体稳定性设计方法[J]. 吉林大学学报(工学版), 2025, 55(11): 3521-3533. |
| [2] | 韦芳芳,李丽萍,徐庆鹏,赵有正,杨晶晶. 受火双钢板-混凝土组合剪力墙加固后抗震性能试验[J]. 吉林大学学报(工学版), 2025, 55(1): 230-244. |
| [3] | 刘保东,李芳,王晓溪,高猛. 混凝土加强波纹钢组合板抗弯刚度及承载能力[J]. 吉林大学学报(工学版), 2024, 54(9): 2502-2510. |
| [4] | 刁延松,任义建,杨元强,赵凌云,刘秀丽,刘芸. 带有摩擦耗能组件的可更换钢梁柱拼接节点抗震性能试验[J]. 吉林大学学报(工学版), 2024, 54(6): 1643-1656. |
| [5] | 孙敏,朱远恒,高鹏真,李振东,方有珍. 多降雨环境下锈蚀钢筋混凝土柱装配节点抗震性监测[J]. 吉林大学学报(工学版), 2024, 54(12): 3545-3551. |
| [6] | 陈伟宏,陈艳,洪秋榕,崔双双,颜学渊. BRBs加固震损装配式混凝土框架结构抗震性能试验[J]. 吉林大学学报(工学版), 2022, 52(8): 1817-1825. |
| [7] | 许卫晓,程扬,杨伟松,鞠佳昌,于德湖. RC框架⁃抗震墙并联结构体系拟静力试验[J]. 吉林大学学报(工学版), 2021, 51(1): 268-277. |
| [8] | 高昊,王君杰,刘慧杰,王剑明. 连续梁桥地震行为可控设计准则及实用装置[J]. 吉林大学学报(工学版), 2020, 50(5): 1718-1727. |
| [9] | 戴岩, 聂少锋, 周天华. 带环梁的方钢管约束钢骨混凝土柱-钢梁节点滞回性能有限元分析[J]. 吉林大学学报(工学版), 2018, 48(5): 1426-1435. |
| [10] | 王铁成,李新华,王天柱,康谷贻 . 反复荷载作用下的异形柱框架滞回性能[J]. 吉林大学学报(工学版), 2007, 37(01): 224-228. |
|
||