Large-scale shaking table tests on the seismic responses of soil slopes with various natural densities

被引:28
作者
Su, Lijun [1 ,2 ,3 ,4 ]
Li, Cheng [1 ,4 ]
Zhang, Chonglei [1 ,2 ]
机构
[1] Chinese Acad Sci, Inst Mt Hazards & Environm, Key Lab Mt Hazards & Earth Surface Proc, Chengdu 610041, Sichuan, Peoples R China
[2] CAS Ctr Excellence Tibetan Plateau Earth Sci, Beijing 100101, Peoples R China
[3] China Pakistan Joint Res Ctr Earth Sci, Islamabad, Pakistan
[4] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
基金
中国国家自然科学基金;
关键词
Shaking table test; Density; Failure process; Dynamic response; Spectral characteristic; Mechanical property; DYNAMIC-RESPONSE; FAILURE MODE; SPATIAL-DISTRIBUTION; GROUND MOTION; SHEAR MODULUS; EARTHQUAKE; BEHAVIOR; AMPLIFICATION; MECHANISM;
D O I
10.1016/j.soildyn.2020.106409
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
To distinguish how the natural density of soil affects the seismic response of a soil slope, three large-scale shaking table tests are conducted on slopes of different densities under seismic excitations. The natural density of the homogeneous dense slope (HDS, case #1) is 1.65 g/cm(3); that of the heterogeneous graded slope (HGS, case #2) increases from 1.35 g/cm(3) to 1.65 g/cm(3) with depth; that of the homogeneous loose slope (HLS, case #3) is 1.35 g/cm(3). The failure processes, acceleration response laws, spectral characteristics, dynamic strain responses and shear stress-strain behaviours observed during the three tests are compared. The results show that the soil density distribution has a significant effect on the seismic response of a slope. The HGS and HLS fail suddenly under peak ground accelerations (PGAs) of 0.6 g and 0.5 g, respectively. The failure zone in the upper HLS is larger than that in the HGS. The acceleration amplification effect of the HDS is weak, while those of the HGS and HLS gradually increase with the PGA. The position and energy required to produce a nonlinear acceleration amplification factor effect are closely related to the natural density of the slope. The acceleration amplification factors of the HGS and HLS show nonlinear effects at 0.50 times and 0.357 times the slope height, respectively, and the corresponding PGAs are 0.4 g and 0.3 g. With an increasing natural density, the acceleration amplification factor decreases gradually, and more energy is required for the slope to fail under earthquake activity. The acceleration response law is related to the shape and amplitude of the peak in the fast Fourier transform (FFT) spectrum. The dominant frequency differences among the FFT spectra show that the lower the natural density of the slope is, the lower the location of damage in the slope. Combining the results of the peak micro-strain and shear stress-strain behaviour of the three slopes, the shear modulus of the HDS is the highest, and that of the HLS is the lowest.
引用
收藏
页数:20
相关论文
共 50 条
[41]   Shaking table test on the seismic response of large-scale subway station in a loess site: A case study [J].
Chen, Su ;
Zhuang, Haiyang ;
Qu, Dengzhou ;
Yuan, Jie ;
Zhao, Kai ;
Ruan, Bin .
SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 2019, 123 :173-184
[42]   Shaking Table Tests on Seismic Responses of Silica Sand Foundation Reinforced by Vibroflotation [J].
Zhao, Jinqiao ;
Ou, Qiang ;
Liu, Xuecheng ;
Zheng, Changjie ;
Ding, Xuanming .
INTERNATIONAL JOURNAL OF GEOMECHANICS, 2024, 24 (07)
[43]   Landslide dam deformation analysis under aftershocks using large-scale shaking table tests measured by videogrammetric technique [J].
Shi, Zhen-Ming ;
Wang, You-Quan ;
Peng, Ming ;
Guan, Sheng-Gong ;
Chen, Jian-Feng .
ENGINEERING GEOLOGY, 2015, 186 :68-78
[44]   Seismic Response Characteristics of a Rock Slope with Small Spacing Tunnel Using a Large-Scale Shaking Table [J].
Niu J. ;
Jiang X. ;
Yang H. ;
Wang F. .
Geotechnical and Geological Engineering, 2018, 36 (4) :2707-2723
[45]   Effects of groundwater level on the seismic responses of coral sand ground and superstructure by shaking table tests [J].
Ding, Xuanming ;
Zhang, Yanling ;
Wu, Qi ;
Cao, Guangwei ;
Chen, Zhixiong .
ACTA GEOTECHNICA, 2022, 17 (07) :3047-3066
[46]   Shaking Table Tests to Evaluate the Seismic Performance of Soil Nailing Stabilized Embankments [J].
Sahoo, Smrutirekha ;
Manna, Bappaditya ;
Sharma, K. G. .
INTERNATIONAL JOURNAL OF GEOMECHANICS, 2021, 21 (04)
[47]   Seismic response characteristics and deformation evolution of the bedding rock slope using a large-scale shaking table [J].
Jianxian He ;
Shengwen Qi ;
Zhifa Zhan ;
Songfeng Guo ;
Chunlei Li ;
Bowen Zheng ;
Xiaolin Huang ;
Yu Zou ;
Guoxiang Yang ;
Ning Liang .
Landslides, 2021, 18 :2835-2853
[48]   Development of a robust high-speed videogrammetric technique for the measurement of large-scale shaking table tests [J].
Gao, Sa ;
Chen, Peng ;
Tong, Xiaohua ;
Wang, Benkang .
32ND INTERNATIONAL CONGRESS ON HIGH-SPEED IMAGING AND PHOTONICS, 2019, 11051
[49]   Seismic performance of small and medium-sized homogeneous earthen dams considering valley site effects in large-scale shaking table tests [J].
Gao, Yunqi ;
Wang, Liya ;
Sun, Shuaijie ;
Zhang, Yu ;
Pan, Jiasuo ;
Gao, Yufeng .
ENGINEERING GEOLOGY, 2023, 318
[50]   Study on seismic response of a large-scale shield tunnel with an innovative loading device based on shaking table test [J].
Hong, Junliang ;
Huang, Xiangyun ;
Lu, Jiahui ;
Luo, Junjie ;
Zhou, Fulin .
SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 2025, 188