Rock and Soil Mechanics ›› 2020, Vol. 41 ›› Issue (8): 2746-2755.doi: 10.16285/j.rsm.2019.2026

• Geotechnical Engineering • Previous Articles     Next Articles

A practical method of calculation of bearing capacity and settlement of large-diameter post-grouting piles

WAN Zhi-hui1, 2, DAI Guo-liang1, 2, GAO Lu-chao1, 2, GONG Wei-ming1, 2   

  1. 1. Key Laboratory of Concrete and Prestressed Concrete Structures of the Ministry of Education, Southeast University, Nanjing, Jiangsu 211189, China; 2. School of Civil Engineering, Southeast University, Nanjing, Jiangsu 211189, China
  • Received:2019-12-01 Revised:2020-05-05 Online:2020-08-14 Published:2020-10-18
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (51678145, 51878160), the National Key Research and Development Program of China (2017YFC0703408) and the Six Talent Peaks Project in Jiangsu Province (XNY-047).

Abstract: Based on the static load test data of 716 test piles collected from 139 projects, the practical calculation method of bearing capacity and settlement of large-diameter post-grouted piles was studied. The improvement coefficients of the side friction and base resistance of soil layer were given primarily based on statistics analysis, and the practical calculation approach for the bearing capacity of large-diameter post-grouted piles applicable to different grouting types was presented. The reliability of the proposed approach was verified by a large number of measured data. Moreover, the influence coefficient of post-grouting settlement was introduced based on the settlement calculation method of large-diameter pile foundation without grouting. Based on the statistical analysis, the recommended range of influence coefficient of post-grouting settlement was given, and an empirical estimation method for calculating settlement of large-diameter post-grouted piles suitable for different soil layers was proposed. Finally, the applicability of the proposed method was verified using engineering examples. The research results have been incorporated into the industry standard of the People's Republic of China Code for design of ground base and foundation of highway bridges and culverts (JTJ 3363-2019) and the industry standard of national project construction Technical specification for post-grouting of cast-in-place pile of highway bridges (T/CECS G: D67-01-2018), which can promote the wide application of post-grouting technique.

Key words: large-diameter post-grouted pile, bearing capacity, improvement coefficient, statistical analysis, settlement calculation, influence coefficient of post-grouting settlement

CLC Number: 

  • TU 473
[1] WAN Zhi-hui, DAI Guo-liang, GONG Wei-ming, GAO Lu-chao, XU Yi-fei, . Experimental study on lateral bearing behavior of post-grouted piles in calcareous sand [J]. Rock and Soil Mechanics, 2021, 42(2): 411-418.
[2] SUN Zhuang-zhuang, MA Gang, ZHOU Wei, WANG Yi-han, CHEN Yuan, XIAO Hai-bin. Influence of particle shape on size effect of crushing strength of rockfill particles [J]. Rock and Soil Mechanics, 2021, 42(2): 430-438.
[3] REN Lian-wei, REN Jun-yang, KONG Gang-qiang, LIU Han-long, . Field tests on thermo-mechanical response and bearing capacity of PHC energy pile under cooling-heating cyclic temperature [J]. Rock and Soil Mechanics, 2021, 42(2): 529-536.
[4] HUANG Chao-xuan, YUAN Wen-xi, HU Guo-jie, . An estimation method of horizontal bearing capacity of piles after pre-consolidation treatment for layered soft foundation [J]. Rock and Soil Mechanics, 2021, 42(1): 113-124.
[5] LI Chao, LI Tao, JING Guo-ye, XIAO Yu-hua, . Study on the ultimate bearing capacity of surrounding soil underlying gripper of shaft boring machine [J]. Rock and Soil Mechanics, 2020, 41(S1): 227-236.
[6] LIU Run, CAO Tian-ming, CHEN Guang-si, ZHANG Hai-yang, LI Cheng-feng. Experimental study of the effect of spudcan penetration and extraction on bearing capacity of an adjacent spudcan [J]. Rock and Soil Mechanics, 2020, 41(9): 2943-2952.
[7] HU Wei, MENG Jian-wei, YAO Chen, LEI Yong, . A method for calculating vertical pullout ultimate bearing capacity of shallow circular anchor plate [J]. Rock and Soil Mechanics, 2020, 41(9): 3049-3055.
[8] ZHOU Qiang, LI Kang-ping, DUAN Ya-hui, CAO Zi-jun, LI Dian-qing, . Safety criteria for bearing capacity of foundation based on the generalized reliability ratio of safety margin [J]. Rock and Soil Mechanics, 2020, 41(6): 2052-2062.
[9] WU Xing-zheng, WANG Rui-kai, XIN Jun-xia, . Geometric reliability analysis of geotechnical structures at a specific site [J]. Rock and Soil Mechanics, 2020, 41(6): 2070-2080.
[10] ZHAO Ming-hua, PENG Wen-zhe, YANG Chao-wei, XIAO Yao, LIU Ya-nan. Upper bound analysis of lateral bearing capacity of rigid piles in sloping ground [J]. Rock and Soil Mechanics, 2020, 41(3): 727-735.
[11] YANG Xue-xiang, JIAO Yuan-fa, YANG Yu-yi, . Development and test of aerated inflation controlled anchors [J]. Rock and Soil Mechanics, 2020, 41(3): 869-876.
[12] HE Zhi-jun, LEI Hao-cheng, XIA Zhang-qi, ZHAO Lian-heng. Analysis of settlement and internal force displacement of single pile in multilayer soft soil foundation [J]. Rock and Soil Mechanics, 2020, 41(2): 655-666.
[13] SHI Dan-da, MAO Yi-yao, YANG Yong, YUAN Yuan, HAO Dong-xue, . Experimental study on the deformation characteristics of soils around uplift circular plate anchors using digital image correlation technology [J]. Rock and Soil Mechanics, 2020, 41(10): 3201-3213.
[14] LEI Yong, DENG Jia-zheng, LIU Ze-yu, LI Jun-jie, ZOU Gen. A method to calculate ultimate bearing capacity of rock foundation with cavities considering load position offset [J]. Rock and Soil Mechanics, 2020, 41(10): 3326-3331.
[15] WANG Dong-ying, TANG Hua, YIN Xiao-tao, YANG Guang-hua, JIANG Yan, . Estimation method of ultimate bearing capacity of tunnel-type anchorage based on simplified mechanical model [J]. Rock and Soil Mechanics, 2020, 41(10): 3405-3414.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] YAN Tian-you, LI Tong-chun, ZHAO Lan-hao, JI Wei-wei. Elastoplastic finite element iteration method for stability analysis of three-dimensional slope[J]. , 2009, 30(10): 3102 -3108 .
[2] WANG Gang, JIANG Yu-jing, WANG Wei-ming, LI Ting-chun. Development and application of an improved numeric control shear-fluild coupled apparatus for rock joint[J]. , 2009, 30(10): 3200 -3209 .
[3] PAN Yue, QI Yun-song, LI Ai-wu. Discussion on “Surrounding rock instability based on catastrophe model of deep-buried tunnel excavation”[J]. , 2009, 30(10): 3210 -3214 .
[4] NI Xiao-hui,ZHU Zhen-de,ZHAO Jie,LI Dao-wei,FENG Xia-ting. Meso-damage mechanical digitalization test of complete process of rock failure[J]. , 2009, 30(11): 3283 -3290 .
[5] LI Li-ping, LI Shu-cai, CUI Jin-sheng. Experimental research on chemical grout for treating water inrush in rock mass[J]. , 2009, 30(12): 3642 -3648 .
[6] MA Wen-tao, KONG Liang. Genetic-least square support vector machine estimation of slope stability[J]. , 2009, 30(12): 3876 -3880 .
[7] SUN Shu-lin,LI Fang,CHEN Jun. Electrical resistivity measurement for lime-stabilized silt soil[J]. , 2010, 31(1): 51 -55 .
[8] WU Jian,XIE Xin-yu,ZHU Xiang-rong. Study of properties of 1-D complex nonlinear consolidation of saturated soils[J]. , 2010, 31(1): 81 -86 .
[9] CHEN Chang-lu,SHAO Sheng-jun,ZHENG Wan-kun,NIU Hong-tao. Three-dimensional dynamic stability analysis of high loess slope taking the jiulongshan slope for example[J]. , 2010, 31(1): 229 -232 .
[10] XU Xing-wang,LI Xiao-lun. An observation and analysis of passenger dedicated line subgrade in collapsible loess zone[J]. , 2010, 31(1): 233 -236 .