Rock and Soil Mechanics ›› 2023, Vol. 44 ›› Issue (9): 2707-2716.doi: 10.16285/j.rsm.2022.1583

• Geotechnical Engineering • Previous Articles     Next Articles

Characteristics and mechanism of soil heave at the bottom of ultra-deep circular shafts in soft soil areas

QIAO Ya-fei1, 2, YAN Kai1, 3, ZHAO Teng-teng4, DING Wen-qi1, 2   

  1. 1. Department of Geotechnical Engineering, College of Civil Engineering, Tongji University, Shanghai 200092, China; 2. Key Laboratory of Geotechnical and Underground Engineering of Ministry of Education, Tongji University, Shanghai 200092, China; 3. Shanghai Municipal Engineering Design Institute (Group) Co., Ltd., Shanghai 200092, China; 4. Engineering Project Management Company, Shanghai Chengtou Water Group, Shanghai 200002, China
  • Received:2022-10-12 Accepted:2023-01-03 Online:2023-09-11 Published:2023-09-02
  • Supported by:
    This work was supported by the National Natural Science Foundation Project (52090083), Shanghai Chengaung Program (20CG26) and Consulting Project on Shanghai Deep Tunnel Project.

Abstract: Based on an ultra-deep circular shaft project in Shanghai, the field data of soil heave at the bottom of the pit during the construction were collected, and the vertical distribution pattern, evolution law and main influencing factors of soil heave at the bottom of the pit were summarized. An axisymmetric numerical model was then built and verified to investigate the effect of the excavation-induced unloading, dewatering, diaphragm wall and soil mechanical properties on the soil heave, then the mechanism of soil heave was revealed. Soil heave was the combined result of the soil mechanical response under the excavation-induced unloading, dewatering, and diaphragm wall restraint, in which the excavation-induced unloading and the deflection of the diaphragm wall caused the soil heave, and the dewatering and the negative frictional resistance inhibited the soil heave. Excavation-induced unloading had a prominent influence on the depth, and the unloading rebound mechanism dominated the soil heave within that depth, while the shear deformation controlled the soil heave beyond that depth range. Soil rheology and dissipation of negative pore water pressure jointly led to the time dependence of soil heave. The soil heave at the pit bottom of small-diameter ultra-deep shafts in soft soil areas decreased approximately linearly along the depth, and its maximum value was located at the center of the excavation face. The soil heave first increased slowly and then increased near linearly and rapidly with the increase of excavation depth. However, the soil heave tended to increase slowly with time in the non-excavation stage.

Key words: ultra-deep circular shaft, soil heave, mechanism, monitoring data, numerical simulation

CLC Number: 

  • TU443
[1] YANG Xuan-yu, WANG Yong, . Experimental study on shear behavior of regular soil-rock interface considering asperity widths [J]. Rock and Soil Mechanics, 2025, 46(S1): 195-204.
[2] TONG Jia-rong, ZHANG Shu, LI Rong, XIA Bin-tong, WANG Ning-wei, . Mechanism of electro-chemical stabilization for modifying Zhuhai soft clay [J]. Rock and Soil Mechanics, 2025, 46(S1): 262-270.
[3] LI Bin, SHEN Hai-meng, LI Qi, LI Xia-ying, . A numerical simulation of dynamic evolution of permeability during granite shear process under different confining pressures [J]. Rock and Soil Mechanics, 2025, 46(S1): 437-453.
[4] FENG De-luan, YU Yang, LIANG Shi-hua. Research progress and review on strength and water stability of alkali-activated cementitious material solidified coastal soft clay [J]. Rock and Soil Mechanics, 2025, 46(S1): 13-39.
[5] SUN Zhi-liang, SHAO Min, WANG Ye-chen-zi, LIU Zhong, REN Wei-zhong, BAI Wei, LI Peng, . Mesoscopic simulation and analysis of influencing factors for ground subsidence induced by leakage through pipeline defect [J]. Rock and Soil Mechanics, 2025, 46(S1): 507-518.
[6] E Tian-long, CUI Qiang, SUN Zhi-liang, FENG Yang-zhou, LI Bing-zhen, MIAO Dong, YANG Jian, MIAO Tian, . Structure optimization and bearing mechanism of a novel composite foundation incorporating short column-batter piles [J]. Rock and Soil Mechanics, 2025, 46(9): 2955-2966.
[7] LI Xiao-feng, LI Hai-bo, LIU Li-wang, FU Shuai-yang, . Tensile failure characteristics and mesoscopic mechanism of rocks under impact loading [J]. Rock and Soil Mechanics, 2025, 46(8): 2387-2398.
[8] SONG Mu-yuan, YANG Ming-hui, CHEN Wei, LU Xian-zhui, . Prediction of shield tunneling-induced soil settlement based on self-attention recurrent neural network model [J]. Rock and Soil Mechanics, 2025, 46(8): 2613-2625.
[9] ZHANG Qi, WANG Ju, LIU Jiang-feng, CAO Sheng-fei, XIE Jing-li, CHENG Jian-feng, . Core disposal elements spacing design for high-level radioactive waste repository under coupled thermo-hydro-mechanical condition [J]. Rock and Soil Mechanics, 2025, 46(8): 2626-2638.
[10] ZHU Xian-xiang, ZHANG Qi, MA Jun-peng, WANG Yong-jun, MENG Fan-zhen, . Diffusion mechanism of seepage grouting in water-bearing sand layer under slurry-water replacement effect [J]. Rock and Soil Mechanics, 2025, 46(6): 1957-1966.
[11] LIANG Qing-guo, LI Jing, ZHANG Chong-hui, LIU Tong-tong, SUN Zhi-tao, . Mechanical response of tunnel lining in loess-mudstone composite strata under uniform expansion of foundation [J]. Rock and Soil Mechanics, 2025, 46(6): 1811-1824.
[12] QI Kai, WAN Zhi-hui, DAI Guo-liang, HU Tao, ZHOU Feng, ZHANG Peng, . Mechanical properties and microscopic mechanisms of calcareous sand solidified with different grouting materials [J]. Rock and Soil Mechanics, 2025, 46(6): 1825-1838.
[13] ZHANG Tao-yi, WANG Jia-quan, LIN Zhi-nan, TANG Yi, . Influences of fines content on strength deterioration and static shear characteristics of gravelly soil subgrade [J]. Rock and Soil Mechanics, 2025, 46(4): 1141-1152.
[14] TANG Xian-xi, ZHANG Xu-jun, LI Hao-jie, . Evaluation of mechanical properties and analysis of solidification principles of loess solidified with steel slag-coal gangue geopolymer [J]. Rock and Soil Mechanics, 2025, 46(4): 1205-1214.
[15] HOU Gong-yu, ZHANG Shi-ou, CUI Di, CHEN Hong-bo, BI Li-yuan, SHANG Yu-hao. Research on coupling performance of distributed fiber optic sensor in massive concrete raft foundation [J]. Rock and Soil Mechanics, 2025, 46(4): 1310-1322.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!