Rock and Soil Mechanics ›› 2023, Vol. 44 ›› Issue (3): 673-684.doi: 10.16285/j.rsm.2022.0567

• Fundamental Theroy and Experimental Research • Previous Articles     Next Articles

Experimental study on the bearing capacity of piles in sand under cyclic loading

ZHANG Xin1, DONG Hao1, 2, XU Ying-ying1, WANG Liu-yue1   

  1. 1. College of Geosciences and Engineering, North China University of Water Resources and Electric Power, Zhengzhou, Henan 450046, China; 2. Zhejiang Huadong Consulting Engineering Co., Ltd., Hangzhou, Zhejiang 310014, China
  • Received:2022-04-20 Accepted:2022-09-02 Online:2023-03-21 Published:2023-03-23
  • Supported by:
    This work was supported by the National Key R & D Program (2019YFC1509704) and the National Natural Science Foundation of China (U1704243), the Foundation of Henan Educational Committee (20A410002) and Henan Province Foundation for Returness.

Abstract: The vertical cyclic loading device designed in-house was used to study the bearing characteristics of monopiles in sand and the deformation mechanism of the soil around the pile by laboratory model tests. According to the test results, the cumulative settlement of the pile can be divided into three regions: the non-developing region, the gradually developing region and the damaging region; the envelope area of the hysteresis loop of the hysteresis curve shows a trend of gradual decrease with the increase of the number of cycles, the hysteresis curve develops from non-closed to closed curve, and the deformation of soil around the pile gradually changes from elastic-plastic deformation to elastic deformation. The particle image velocimetry (PIV) technique is used to measure the soil deformation around the pile in real-time under the cyclic load, and the complete displacement field and shear strain field of the soil around the pile are obtained. The results show that the cyclic period, amplitude, and compactness are the main factors influencing the soil deformation around the pile. The shear damage zone shows an inward trend close to the soil surface, and the sheer damage surface is nearly parallel to the pile-soil interface as the increase of the cyclic period. The larger the cyclic load amplitude is, the more the surface soil tends to be compacted under the cyclic load, the lateral earth pressure increases, the displacement influence area decreases, the corresponding shear strain field shows an “ear” distribution, and the amplitude is more likely to cause the soil around the pile to sink than the cyclic period. The cumulative settlement of the pile in different densities of sands shows different characteristics with cyclic period. The displacement field of the soil around the pile shows an inverted truncated cone in loose sand, while dense sand shows a cylindrical shape.

Key words: vertical cyclic load, pile foundation, soil deformation, particle image velocimetry (PIV)

CLC Number: 

  • TU441
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[3] XIAO Shi-guo,XIAN Fei,WANG Huan-long. 一种微型桩组合抗滑结构内力分析方法[J]. , 2010, 31(8): 2553 -2559 .
[4] YE Hai-lin, ZHENG Ying-ren, HUANG Run-qiu, DU Xiu-li, LI An-hong4, XU Jiang-bo. Study of application of strength reduction dynamic analysis method to aseismic design of anti-slide piles for landslide[J]. , 2010, 31(S1): 317 -323 .
[5] ZHANG Zhi-pei, PENG Hui, RAO Xiao. Numerical simulation study of grouting diffusion process in soft soil foundation[J]. , 2011, 32(S1): 652 -0655 .
[6] WU Li-zhou , ZHANG Li-min , HUANG Run-qiu. Analytic solution to coupled seepage in layered unsaturated soils[J]. , 2011, 32(8): 2391 -2396 .
[7] LIU Run , WANG Xiu-yan , LIU Yue-hui , WANG Wu-gang. Thermal buckling analysis of submarine buried pipelines with isolated prop initial imperfection[J]. , 2011, 32(S2): 64 -69 .
[8] LIANG Yao-zhe. Analysis of active earth pressure of rigid pile composite foundation[J]. , 2012, 33(S1): 25 -29 .
[9] HAN Jian-xin , LI Shu-cai , LI Shu-chen , YANG Wei-min , WANG Lei . Study of post-peak stress-strain relationship of rock material based on evolution of strength parameters[J]. , 2013, 34(2): 342 -346 .
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