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WANG Hong-xin. Safety factor of heave-resistant stability considering two- and three-dimensional size effects of foundation pits[J]. Chinese Journal of Geotechnical Engineering, 2013, 35(11): 2144-2152.
Citation: WANG Hong-xin. Safety factor of heave-resistant stability considering two- and three-dimensional size effects of foundation pits[J]. Chinese Journal of Geotechnical Engineering, 2013, 35(11): 2144-2152.

Safety factor of heave-resistant stability considering two- and three-dimensional size effects of foundation pits

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  • Received Date: February 28, 2013
  • Published Date: November 19, 2013
  • A large number of project practices show that small-size foundation pits are more stable, which display obvious size effects. However, the methods recommended by the existing codes all assume that the excavation width and size do not affect the safety factor, resulting in a great waste of enclosure structure of small-size and narrow foundation pits. Currently, the safety factor calculated by the analytical method cannot scientifically and reasonably consider the three-dimensional size effect of foundation pits. In order to solve the problem, a new safety factor KW is proposed, by which the problem of excavation bottom uplifting and instability is reduced to that of the expansion of the plastic zone due to unloading in the elastic half-space. The absolute value of the load caused by excavation isγ1H. The enclosure structure of foundation pits leads to the extension of the plastic zone under the pit bottom downward when they fail. The ultimate state of the load will be reached when the fracture surface of the plastic zone passes through the toe of the enclosure structure. The additional stress caused by unloading can be calculated by the analytical solution of the elasticity. The limit load can be obtained by the additional stress plus the ground stress. Considering the overload qoutside the foundation pits, KW is equal to pu/(γ1H+q). The new safety factor KW can be adopted to analyze the impact of the excavation width on the stability of strip pits and the impact of the excavation size on the stability of rectangular pits and to calculate the safety factor at the different positions for the same foundation pit. An important method is proposed to decrease the embedded depth of enclosure structure taking the advantages of two-and three-dimensional size effects and spatial effect of foundation pits so that the new safety factor can be widely applied.
  • [1]
    王洪新. 基坑宽度对围护结构稳定性的影响[J]. 土木工程学报, 2011, 44(6): 120-126. (WANG Hong-xin. Influence of excavation width on enclosure-structure stability of foundation pits[J]. China Civil Engineering Journal, 2011, 44(6): 120-126. (in Chinese))
    [2]
    胡安峰, 陈博浪, 应宏伟. 土体本构模型对强度折减法分析基坑整体稳定性的影响[J]. 岩土力学, 2011, 32(增刊2):592-597. (HU An-feng, CHEN Bo-lang, YING Hong-wei. Influences of constitutive models on overall stability analysis of deep excavations using strength reduction method[J]. Rock and Soil Mechanics, 2011, 32(S2): 592-597. (in Chinese))
    [3]
    杨雪强, 刘祖德, 何世秀. 论深基坑支护的空间效应[J]. 岩土工程学报, 1998, 20(2): 74-78. (YANG Xue-qiang, LIU Zu-de, HE Shi-xiu. Research about spatial effect of deep pit supporting[J]. Chinese Journal of Geotechnical Engineering, 1998, 20(2): 74-78. (in Chinese))
    [4]
    张 震, 冯 虎, 刘国彬. 基坑抗隆起稳定三维分析的极限平衡法[J]. 沈阳建筑大学学报, 2012, 28(1): 37-43. (ZHANG Zhen, FENG Hu, LIU Guo-bin. A three-dimensional limit equilibrium method for basal stability analysis[J]. Journal of Shenyang Jianzhu University, 2012, 28(1): 37-43. (in Chinese))
    [5]
    曾庆义, 杨晓阳. 基坑抗隆起稳定问题的应力强度计算方法[J]. 岩土工程学报, 1996, 18(2): 17-22. (ZENG Qing-yi, YANG Xiao-yang. The calculation model for stability of excavation against upheaval[J]. Chinese Journal of Geotechnical Engineering, 1996, 18(2): 17-22. (in Chinese))
    [6]
    胡玉银. 对“基坑抗隆起稳定问题的应力强度计算方法”的讨论[J]. 岩土工程学报, 1996, 18(6): 119. (HU Yu-yin. Discuss on “The calculation model for stability of excavation against upheaval”[J]. Chinese Journal of Geotechnical Engineering, 1996, 18(6): 119. (in Chinese))
    [7]
    袁聚云, 赵锡宏. 竖向线荷载和条形均布荷载作用在地基内部时的土中应力公式[J]. 上海力学, 1999, 20(2): 156-165. (YUAN Ju-yun, ZHAO Yi-hong. Formulus for calculating stresses in soil subjecting to vertical line load and strip distributed load beneath the surface of ground[J]. Shanghai Mechanics, 1999, 20(2): 156-165. (in Chinese))
    [8]
    袁聚云, 赵锡宏. 竖向均布荷载作用在地基内部时的土中应力公式[J]. 上海力学, 1995, 16(3): 213-222. (YUAN Ju-yun, ZHAO Yi-hong. Formulas for the calculation of stress in soil subjecting to distributed loading beneath the surface of ground[J]. Shanghai Mechanics, 1995, 16(3): 213-222. (in Chinese))
    [9]
    MATSUOKA H. Constitutive equation and FE analysis for anisotropic soil[C]//Proceedings of the Fourth International Conference on Numerical Methods in Geomechanics. Rotterdam: A. A. Balkema, 1982: 223-233.

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