Rock and Soil Mechanics ›› 2025, Vol. 46 ›› Issue (12): 4009-4028.doi: 10.16285/j.rsm.2025.0039

• Numerical Analysis • Previous Articles    

A state-of-the-art review on the borehole in-situ testing techniques in deep overburden layer

ZHANG Shi-shu1, LI Qing-chun1, LIU Song-yu2, CUI De-shan3, LI Hong-jiang2, LI Wei3, CHEN Pan4   

  1. 1. PowerChina Chengdu Engineering Corporation Limited, Chengdu, Sichuan 610072, China; 2. Institute of Geotechnical Engineering, Southeast University, Nanjing, Jiangsu 210096, China; 3. Faculty of Engineering, China University of Geosciences (Wuhan), Wuhan, Hubei 430074, China; 4. State Key Laboratory of Geomechanics and Geotechnical Engineering Safety, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan, Hubei 430071, China
  • Received:2025-01-09 Accepted:2025-02-14 Online:2025-12-11 Published:2025-12-20
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (U22A20601).

Abstract: Hydropower projects, pile foundations of bridges and tall buildings in western China are primarily constructed on deep overburden layers within high mountainous valleys. To accurately determine the physical and mechanical parameters of these deep overburden layers, in-situ borehole testing technology has gained significant attention. This paper systematically reviews the current research status and achievements from the aspect of the test instrument, test technology and process, theoretical analysis and data interpretation of various in-situ testing techniques for deep overburden drilling, including static cone penetration test, pressuremeter test, borehole shear test, dynamic penetration test, and standard penetration test. The findings indicate that the main advantages of static cone penetration test are continuous rapid testing and high data accuracy, and its disadvantages include difficulty penetrating gravel soils and an inability to observe soil layers directly. The combined drilling-penetration exploration method and multi-casing penetration technology can effectively obtain cone-tip resistance, side friction resistance, and permeability for dense silt, sand, gravel, pebble and cobble layers in deep overburden. The pressuremeter test can measure in-situ mechanical parameters at different depths, but results are strongly affected by the pore-forming quality, with a lower testing precision in soft soil. Compared to pre-drilling and press-in pressuremeter methods, self-boring pressuremeter minimizes disturbance to the borehole walls, effectively preventing collapse in non-cohesive soils and shrinkage in cohesive soils within deep overburden layers, thereby rapidly and accurately obtaining static lateral pressure, plastic pressure, ultimate pressure, and lateral pressure modulus. The main advantage of the borehole shear test is that the strength parameter is measured under the natural stress state of the overburden, but the main disadvantage is that the shear mechanism and drainage conditions are not easy to control. Borehole shear tests are suitable for saturated fine-grained soils in deep overburden, with results closely approximating consolidated undrained shear strength parameters. The main advantages of dynamic penetration test and standard penetration test are wide application range and identification of sand liquefaction, but the main disadvantage is that the transmission of hammer energy is not easy to determine. In deep overburden at considerable depths, the relationship between dynamic penetration and standard penetration hammer numbers is nonlinear, necessitating appropriate correction of hammer numbers through monitoring hammer energy. Current challenges include a lack of in-situ drilling testing technologies and robust data-interpretation methods for deep overburden characterized by high-stress levels, complex structures, and overconsolidation. It is recommended to develop multifunctional in-situ testing equipment, integrate various in-situ testing technologies, and enhance the multi-source data correlation analysis of test parameters using machine learning. This approach is an effective solution to the problems.

Key words: deep overburden layer, static cone penetration test, self-boring pressuremeter test, borehole shear test, dynamic penetration test, standard penetration test

CLC Number: 

  • TU42
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[4] LUO Xiao-qian, KONG Ling-wei, YAN Jun-biao, GAO Zhi-ao, TIAN Sheng-kui, . In-situ borehole shear test and shear strength response characteristics of expansive soil under different saturations [J]. Rock and Soil Mechanics, 2024, 45(1): 153-163.
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[6] LIU Hui, SHEN Zhi-ping, FU Jun-yi. Rod length correction coefficient of DPT considering the influence of the measured number of hammer blow [J]. Rock and Soil Mechanics, 2023, 44(7): 2050-2063.
[7] JIA Duan-yang, CHEN Long-wei, XIE Wang-qing, LI Xin-yang, . Reference blow counts of standard penetration tests used in soil liquefaction evaluation formulae [J]. Rock and Soil Mechanics, 2023, 44(10): 3031-3038.
[8] WANG Wei-ming, CHEN Long-wei, GUO Ting-ting, WANG Yun-long, LING Xian-zhang, . Analysis of standard penetration test-based liquefaction evaluation methods using Chinese liquefaction database [J]. Rock and Soil Mechanics, 2023, 44(1): 279-288.
[9] SHEN Zhi-ping, LIU Hui, FU Jun-yi, SUN Xiu-dong. Experimental study on the measurement of dynamic penetration test hammer impacting energy by force-velocity method and force square method [J]. Rock and Soil Mechanics, 2022, 43(11): 3127-3134.
[10] WANG Bin, HAN You-ming, ZHOU Xin, CHEN Cheng, ZHANG Xian-wei, GUI Lei, . In-situ test of shear modulus decay characteristics of lacustrine clay layer in Taihu Lake [J]. Rock and Soil Mechanics, 2021, 42(7): 2031-2040.
[11] SHU Rong-jun, KONG Ling-wei, SHI Wen-zhuo, LIU Bing-heng, LI Cheng-sheng, . Effects of loading rate on SBPT responses of Zhanjiang structured clay [J]. Rock and Soil Mechanics, 2021, 42(6): 1557-1567.
[12] WANG Jin, ZHU Ze-qi, CHEN Jian, FU Xiao-dong, FANG Qiang, . Study of in-situ mechanical properties of littoral deposit soft soil by self-boring pressuremeter [J]. , 2017, 38(S1): 195-202.
[13] LI Jing-jing, KONG Ling-wei, MU Kun, . In-situ borehole shear test on expansive soil and its strength characteristics [J]. , 2017, 38(2): 453-461.
[14] DONG Lin, WANG Lan-min, XIA Kun, YUAN Xiao-ming,. Comparison of CPT-based and SPT-based liquefaction discrimination methods by Taiwan Chi-Chi earthquake data [J]. , 2017, 38(12): 3643-3648.
[15] YU Yong-tang , ZHENG Jian-guo , LIU Zheng-hong , ZHANG Ji-wen,. Borehole shear test and its application to loess [J]. , 2016, 37(12): 3635-3641.
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