Shaking Table Test on the Seismic Responses of a Slope Reinforced by Prestressed Anchor Cables and Double-Row Antisliding Piles

被引:5
|
作者
Wu, Zuo-ju [1 ]
Wang, Zhi-jia [2 ]
Bi, Jun-wei [3 ]
Fu, Xiao [4 ]
Yao, Yong [1 ]
机构
[1] Southwest Univ Sci & Technol, Sch Civil Engn & Architecture, Mianyang 621010, Sichuan, Peoples R China
[2] Hainan Univ, Coll Civil Engn & Architecture, Haikou 570228, Hainan, Peoples R China
[3] Tongji Univ, Coll Civil Engn, Shanghai 200092, Peoples R China
[4] Southwest Jiaotong Univ, Sch Civil Engn, Chengdu 611756, Sichuan, Peoples R China
基金
中国国家自然科学基金;
关键词
MODEL TEST; BEHAVIOR;
D O I
10.1155/2021/9952380
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The combined retaining structure has gradually received considerable attention in the slope engineering, due to its good reinforcement effects. However, most of the published research studies were focused on the seismic responses of the single-formal supporting structure only. The investigations of dynamic responses of the combined retaining structures are scarce, and the current seismic design is conducted mainly based on experiences. In this work, a series of large-scale shaking table tests were conducted to investigate the seismic responses of the combined retaining structures (i.e., prestressed anchor cables and double-row antisliding piles) and the reinforced slope under seismic excitations, including amplification effect of internal and surface acceleration of the reinforced slope, distribution and change of prestress of the anchor cable, dynamic response of soil pressure behind the antislide pile, and horizontal displacement of the reinforced slope surface. Test results show that, supported by the reinforcement of composite support system, the slope with the multilayer weak sliding surface can experience strong ground motion of 0.9 g. The load of the antisliding pile has reached 80% of its bearing capacity, and the load of the anchor cable has reached 75.0% of its bearing capacity. When the seismic intensity reaches 0.5 g, the slope surface has an obvious downward trend, which will make the corresponding soil pressure suddenly increase after the antislide pile. At the potential sliding zone, the axial force of the anchor cable will increase suddenly under the action of earthquake; after the earthquake, the initial prestress of the anchor cable will be lost, with the loss range of 17.0%similar to 23.0%. These test results would provide an important reference for the further study of the seismic performance of such composite support structure.
引用
收藏
页数:13
相关论文
共 41 条
  • [31] Shaking table test study on seismic optimization comparisons of multi-anchor piles for strengthening soil slopes under earthquake
    Pai L.
    Wu H.
    Ma H.
    Yanshilixue Yu Gongcheng Xuebao/Chinese Journal of Rock Mechanics and Engineering, 2021, 40 (04): : 751 - 765
  • [32] Dynamic responses and evolution characteristics of bedrock and overburden layer slope with space anchor cable anti-slide piles based on large-scale shaking table test
    Lian, Jing
    Ding, Xuanming
    Wen, Hao
    Tong, Xinhao
    Qu, Liming
    SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 2023, 175
  • [33] Study on the seismic performance of a 3D external prestressed self-centering reinforced concrete frame by shaking table test
    Lu, Liang
    Ye, Yuli
    Xia, Wanqiu
    Huang, Ziheng
    Tumu Gongcheng Xuebao/China Civil Engineering Journal, 2020, 53 : 68 - 73
  • [34] Shaking table test and numerical analysis of dynamic response and damage mechanism of a deposit slope with a weak interlayer reinforced by a pile-anchor structure
    Chen, Guangpeng
    Yang, Changwei
    Qu, Liming
    Tong, Xinhao
    Zhang, Kaiwen
    Zhang, Liang
    STRUCTURES, 2024, 59
  • [35] Research on the shaking table test of governance with double-row anti-slide pile appiled in large-scale multilayer sliding surfaces landslide
    Wu, Hong-Gang
    Feng, Wen-Qiang
    Journal of Railway Engineering Society, 2015, 32 (11) : 30 - 36
  • [36] Large-scale shaking table model test on seismic performance of bridge-pile-foundation slope with anti-sliding piles: a case study
    Chonglei Zhang
    Guanlu Jiang
    Lijun Su
    Da Lei
    Weiming Liu
    Zhimeng Wang
    Bulletin of Engineering Geology and the Environment, 2020, 79 : 1429 - 1447
  • [37] Large-scale shaking table model test on seismic performance of bridge-pile-foundation slope with anti-sliding piles: a case study
    Zhang, Chonglei
    Jiang, Guanlu
    Su, Lijun
    Lei, Da
    Liu, Weiming
    Wang, Zhimeng
    BULLETIN OF ENGINEERING GEOLOGY AND THE ENVIRONMENT, 2020, 79 (03) : 1429 - 1447
  • [38] Dynamic responses and evolution characteristics of bedrock and overburden layer slope with space anchor cable anti-slide piles based on large-scale shaking table test (vol 175, 108245, 2023)
    Lian, Jing
    Ding, Xuanming
    Wen, Hao
    Tong, Xinhao
    Qu, Liming
    SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 2024, 178
  • [39] Seismic responses of the steel-strip reinforced soil retaining wall with full-height rigid facing from shaking table test
    Li-cong Cao
    Xiao Fu
    Zhi-jia Wang
    Yong-yi Zhou
    Fei-cheng Liu
    Jian-jing Zhang
    Journal of Mountain Science, 2018, 15 : 1137 - 1152
  • [40] Seismic responses of the steel-strip reinforced soil retaining wall with full-height rigid facing from shaking table test
    CAO Li-cong
    FU Xiao
    WANG Zhi-jia
    ZHOU Yong-yi
    LIU Fei-cheng
    ZHANG Jian-jing
    JournalofMountainScience, 2018, 15 (05) : 1137 - 1152