Bearing capacity of caisson foundations on normally consolidated clay

被引:34
|
作者
Hu, YX
Randolph, MF
机构
[1] Curtin Univ Technol, Dept Civil Engn, Perth, WA 6845, Australia
[2] Univ Western Australia, Ctr Offshore Fdn Syst, Crawley, WA 6009, Australia
关键词
bearing capacity; deep penetration; finite element method; normally consolidated clay; skirted foundations; upper bound analysis;
D O I
10.3208/sandf.42.5_71
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Offshore skirted foundations can be simulated as pre-embedded foundations, since disturbance during installation is limited to a small region around the skirts themselves. The bearing capacity of this type of foundation may be assessed using limit analysis, based on a rigid-plastic idealisation of the soil. However, recent results have shown a significant gap between lower and upper bound estimates of capacity as the skirt depth increases. It is therefore necessary to use techniques such as the finite element method to assess appropriate bearing capacity factors more precisely, and also to identify the transition from shallow to deep failure mechanisms. The soil is considered as normally consolidated clay with undrained shear strength increasing linearly with depth. Soil flow mechanisms have been studied for embedment ratios of up to 5 and the flow mechanisms in normally consolidated soil have been compared with those in homogeneous soil. It has been found that, with increasing embedment ratio, the soil flow mechanism will change from surface failure to a deep, cavity expansion mode and that this transition occurs at a higher embedment ratio in a normally consolidated soil (with significant strength gradient) than in homogeneous soil. Limit analysis can give a reasonable prediction at shallow embedments before this transition. However, at deeper embedments it is necessary to employ a large penetration analysis in order to arrive at a true limiting capacity. In this paper, the limit bearing capacity and transition depths are evaluated and compared with corresponding results for homogeneous soil.
引用
收藏
页码:71 / 77
页数:7
相关论文
共 50 条
  • [31] Deflection-Based Bearing Capacity of Suction Caisson Foundations of Offshore Wind Turbines
    Zhu, Bin
    Zhang, Wen-long
    Ying, Pan-pan
    Chen, Yun-min
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2014, 140 (05)
  • [32] Development of an analytical model for predicting the lateral bearing capacity of caisson foundations in cohesionless soils
    Faizi, Koohyar
    Faramarzi, Asaad
    Dirar, Samir
    Chapman, David
    OCEAN ENGINEERING, 2020, 218
  • [33] Bearing capacity of pre-loaded surface foundations on clay
    Jackson, C
    Zdravkovic, L
    Potts, DM
    COMPUTER METHODS AND ADVANCES IN GEOMECHANICS, VOL 1, 1997, : 745 - 750
  • [34] Ultimate bearing capacity of circular shallow foundations in frozen clay
    Liu, Shuang
    Yao, Zhaoming
    Shang, Yujiao
    JOURNAL OF VIBROENGINEERING, 2019, 21 (04) : 1030 - 1044
  • [35] The influence of the soil plug on the bearing capacity of bucket foundations in clay
    Liu, Run
    Sun, Guodong
    Wang, Xiaolei
    Chen, Guangsi
    Yang, Xu
    SHIPS AND OFFSHORE STRUCTURES, 2023, 18 (S1) : 92 - 109
  • [36] Eulerian Finite Element Analysis for Uplift Capacity of Circular Plate Anchors in Normally Consolidated Clay
    Chen, Z.
    Tho, K. K.
    Leung, C. F.
    Chow, Y. K.
    GEOTECHNICAL ENGINEERING, 2014, 45 (04): : 88 - 92
  • [37] Thermoplastic Analysis of a Thermoactive Pile in a Normally Consolidated Clay
    Vieira, Ana
    Maranha, Joao R.
    INTERNATIONAL JOURNAL OF GEOMECHANICS, 2017, 17 (01) : 1 - 21
  • [38] Effects of disturbance on the behaviour of a normally consolidated soft clay
    Khemissa, Mohamed
    EUROPEAN JOURNAL OF ENVIRONMENTAL AND CIVIL ENGINEERING, 2010, 14 (03) : 361 - 378
  • [39] A constitutive model of normally consolidated clay at small strains
    Chen, C.
    Zhou, Z. M.
    NUMERICAL METHODS IN GEOTECHNICAL ENGINEERING, VOL 1, 2014, : 21 - 25
  • [40] MODELING OF UNDRAINED CREEP OF NORMALLY CONSOLIDATED CLAY.
    Faruque, M.O.
    Journal of Engineering Mechanics, 1986, 112 (10) : 1007 - 1020