参考文献/References:
[1] SUN Y, ZHOU S, LUO Z. Basal-heave analysis of pit-in-pit braced excavations in soft clays[J]. Computers and Geotechnics, 2017, 81: 294-306.
[2] TAN Y, LU Y, XU C, et al. Investigation on performance of a large circular pit-in-pit excavation in clay-gravel-cobble mixed strata[J]. Tunnelling and Underground Space Technology, 2018, 79: 356-374.
[3] SUN Y, ZHAO Y, ZHANG D. Surface subsidence of pit-in-pit foundation in sand–cobble stratum in Beijing area[J]. Proceedings of the Institution of Civil Engineers-Ground Improvement, 2019, 172(2): 96-107.
[4] TERZAGHI K, PECK R B. Soil mechanics in engineering practice[M]. New York: John Wiley & Sons, 1968.
[5] BJERRUM L, EIDE O. Stability of strutted excavations in clay[J]. Géotechnique, 1956, 6(1): 32-47.
[6] CHANG M F. Basal stability analysis of braced cuts in clay[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2000, 126(3): 276-279.
[7] 张耀东, 龚晓南. 软土基坑抗隆起稳定性计算的改进[J]. 岩土工程学报, 2006, 28(S1): 1378-1382.
ZHANG Yaodong, GONG Xiaonan. Improvement on basal heave stability analysis for excavations in soft clay[J]. Chinese Journal of Geotechnical Engineering, 2006, 28(S1): 1378-1382
[8] HSIEH P G, Ou C Y, LIU H T. Basal heave analysis of excavations with consideration of anisotropic undrained strength of clay[J]. Canadian Geotechnical Journal, 2008, 45(6): 788-799.
[9] 王洪新. 基坑的尺寸效应及考虑开挖宽度的抗隆起稳定安全系数计算方法[J]. 岩土力学, 2016, 37(S2): 433-441.
WANG Hongxin. Size effect of foundation pits and calculation method of safety factor of heave-resistant stability considering excavation width[J]. Rock and Soil Mechanics, 2016, 37(S2):433-441.
[10]DRUCKER D C, GREENBERG H J, PRAGER W. The safety factor of an elastic-plastic body in plane strain[J]. J. Appl. Mech., 1951, 18(4): 371-378.
[11]LIAO H J, SU S F. Base stability of grout pile-reinforced excavations in soft clay[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2012, 138(2): 184-192.
[12]HUANG M, TANG Z, YUAN J. Basal stability analysis of braced excavations with embedded walls in undrained clay using the upper bound theorem[J]. Tunnelling and Underground Space Technology, 2018, 79: 231-241.
[13]UKRITCHON B, WHITTLE A J, SLOAN S W. Undrained stability of braced excavations in clay[J]. Journal of geotechnical and Geoenvironmental Engineering, 2003, 129(8): 738-755.
[14]SLOAN S W. Geotechnical stability analysis[J]. Géotechnique, 2013, 63(7): 531-571.
[15]ZIENKIEWICZ O C, HUMPHESON C, LEWIS R W. Associated and non-associated visco-plasticity and plasticity in soil mechanics[J]. Géotechnique, 1975, 25(4): 671-689.
[16]GOH A T C. Assessment of basal stability for braced excavation systems using the finite element method[J]. Computers and Geotechnics, 1990, 10(4): 325-338.
[17]FAHEEM H, CAI F, UGAI K. Three-dimensional base stability of rectangular excavations in soft soils using FEM[J]. Computers and Geotechnics, 2004, 31(2): 67-74.
[18]DO T N, OU C Y, LIM A. Evaluation of factors of safety against basal heave for deep excavations in soft clay using the finite-element method[J]. Journal of Geotechnical and Geoenvironmental Engineering, 2013, 139(12): 2125-2135.
[19]GOH A T C. Basal heave stability of supported circular excavations in clay[J]. Tunnelling and Underground Space Technology, 2017, 61: 145-149.
[20]KEAWSAWASVONG S, UKRITCHON B. Stability of unsupported conical excavations in non-homogeneous clays[J]. Computers and Geotechnics, 2017, 81: 125-136.
[21]MARTIN C M. The use of adaptive finite-element limit analysis to reveal slip-line fields[J]. Géotechnique Letters, 2011, 1(2): 23-29.
[22]CIRIA H, PERAIRE J, BONET J. Mesh adaptive computation of upper and lower bounds in limit analysis[J]. International Journal for Numerical Methods in Engineering, 2008, 75(8): 899-944.