• 全国中文核心期刊
  • 中国科技核心期刊
  • 美国工程索引(EI)收录期刊
  • Scopus数据库收录期刊
WANG Wei-dong, WU Jiang-bin, NIE Shu-bo. Field loading tests on large-diameter rock-socketed bored piles of Wuhan Greenland Center Tower[J]. Chinese Journal of Geotechnical Engineering, 2015, 37(11): 1945-1954. DOI: 10.11779/CJGE201511002
Citation: WANG Wei-dong, WU Jiang-bin, NIE Shu-bo. Field loading tests on large-diameter rock-socketed bored piles of Wuhan Greenland Center Tower[J]. Chinese Journal of Geotechnical Engineering, 2015, 37(11): 1945-1954. DOI: 10.11779/CJGE201511002

Field loading tests on large-diameter rock-socketed bored piles of Wuhan Greenland Center Tower

More Information
  • Received Date: December 08, 2014
  • Published Date: November 19, 2015
  • Wuhan Greenland Center Tower is 636 m high with the average pressure stress 1500 kPa on the bottom of foundation. The test piles with a diameter of 1200 mm and a length of about 55 m are applied to field full scale tests. Large tonnage load tests and measurements of axial force and deformation are carried out so that the status of load bearing and deformation capacity of socketed piles are obtained, and the test results are valuable to the study of the bearing capacity and load transfer mechanism of large-diameter socketed piles in Wuhan area. The results show that the load-settlement curves of the 4 piles are all mild ones, and their bearing capacities are larger than 45000 kPa. The settlements at engineering pile top are 9.7~10.82 mm, and those at pile tip are 2.35~2.83 mm. Side friction distribution and bearing characters of piles embeded in sand rocks are different from those of mudstone. The tip resistance ratios of the 4 piles are 45.3%~58.7%. The calculation method in China's technical code for building pile foundations underestimates the tip resistance of soft rock and very soft rock.
  • [1]
    吴江斌, 王卫东, 陈 锴. 438 m武汉中心大厦嵌岩桩设计[J]. 岩土工程学报, 2013, 35(增刊1): 76-81. (WU Jiang-bin, WANG Wei-dong, CHEN Kai. Design of socketed piles for 438 m-high Wuhan Center Building[J]. Chinese Journal of Geotechnical Engineering, 2013, 35 (S1): 76-81. (in Chinese))
    [2]
    张 雁, 刘金波. 桩基手册[M]. 北京: 中国建筑工业出版社, 2009. (ZHANG Yan, LIU Jin-bo. Pile foundation handbook[M]. Beijing: China Architecture and Building Press, 2009. (in Chinese))
    [3]
    程 晔, 龚维明, 戴国亮, 等. 软岩桩基承载性能试验研究[J]. 岩石力学与工程学报, 2009, 28(1): 165-172. (CHENG Ye, GONG Wei-ming, DAI Guo-liang, et al. Research on bearing performance of socketed pile in soft rock[J]. Chinese Journal of Rock Mechanics and Engineering, 2009, 28(1): 165-172. (in Chinese))
    [4]
    JGJ 94—2008 建筑桩基技术规范[S]. 2008. (JGJ 94—2008 Technical code for building pile foundation[S]. 2008. (in Chinese))
    [5]
    彭海华, 邝健政, 孙 昌, 等. 典型软岩深基础端阻力计算方法探讨[J]. 岩石力学与工程学报, 2007, 26(增刊1): 2913-2920. (PENG Hai-hua, KUANG Jian-zheng, SUN Chang, et al. Discussion on calculation methods for tip-resistance of deep foundation embedded in typical soft rock[J]. Chinese Journal of Rock Mechanics and Engineering, 2007, 26(S1): 2913-2920. (in Chinese))
  • Related Articles

    [1]LI Yuanhai, XU Xiaohua, ZHU Honghu, YANG Shuo, TANG Xiaojie, ZHAO Wanyong. Identification and characterization of rock fractures based on computer vision and software development[J]. Chinese Journal of Geotechnical Engineering, 2024, 46(3): 459-469. DOI: 10.11779/CJGE20221239
    [2]ZHOU Yanguo, ZHOU Xinhui, SANG Yijia, SHI Anchi, CHEN Yunmin. Shear wave velocity-based evaluation of liquefaction resistance of in-situ sand with aging effects[J]. Chinese Journal of Geotechnical Engineering, 2023, 45(S2): 19-24. DOI: 10.11779/CJGE2023S20047
    [3]ZHAO Teng-yuan, SONG Chao, HE Huan. Bayesian estimation of resilient modulus of Jiangsu soft soils from sparse data—Gaussian process regression and cone penetration test data-based modelling and analysis[J]. Chinese Journal of Geotechnical Engineering, 2021, 43(S2): 137-141. DOI: 10.11779/CJGE2021S2033
    [4]ZHAO Yan-hai, YU Jin, ZHOU Chen-hua, ZHAO Kai, XIAO Huai-guang. Characterization of pressure arching effect of arch shell surrounding rock considering deviation of principal stress axis[J]. Chinese Journal of Geotechnical Engineering, 2021, 43(10): 1842-1850. DOI: 10.11779/CJGE202110010
    [5]ZHANG Guo-kai, LI Hai-bo, WANG Ming-yang, LI Jie, DENG Shu-xin. Comparative study on damage characterization and damage evolution of rock under uniaxial compression[J]. Chinese Journal of Geotechnical Engineering, 2019, 41(6): 1074-1082. DOI: 10.11779/CJGE201906011
    [6]CAO Zi-jun, ZHENG Shuo, LI Dian-qing, AU Sui-kiu. Probabilistic characterization of underground stratigraphy and its uncertainty based on cone penetration test[J]. Chinese Journal of Geotechnical Engineering, 2018, 40(2): 336-345. DOI: 10.11779/CJGE201802015
    [7]KONG Ling-wei, ZANG Meng, GUO Ai-guo. Structural damage effect on dynamic shear modulus of Zhanjiang clay and quantitative characterization[J]. Chinese Journal of Geotechnical Engineering, 2017, 39(12): 2149-2157. DOI: 10.11779/CJGE201712001
    [8]ZHANG Wei, LIANG Xiao-long, TANG Xin-yu, SHI Bin, XU Yan-da, XIAO Rui. Fine characterization of spatial pore structure of Nanjing silty sand using micro-CT[J]. Chinese Journal of Geotechnical Engineering, 2017, 39(4): 683-689. DOI: 10.11779/CJGE201704013
    [9]WANG Ming-yuan, SHAN Zhi-gang, SONG Wei-kang, DI Sheng-jie, HU Sheng-gang, CHEN Fan-fan. Experimental study on resistance of pull-out cone penetration tests[J]. Chinese Journal of Geotechnical Engineering, 2016, 38(z2): 167-171. DOI: 10.11779/CJGE2016S2027
    [10]CHENG Ming-shu, WANG Shi-ji, MAO Xin, CHEN Zheng-han, JIANG Sheng-hua. Fissure morphology and mechanical characterization for structure-damaged expansive soil under triaxial compression tests[J]. Chinese Journal of Geotechnical Engineering, 2016, 38(z2): 73-78. DOI: 10.11779/CJGE2016S2012

Catalog

    Article views (393) PDF downloads (580) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return