Dynamic compaction of saturated sands and silty sands: theory

被引:4
|
作者
Thevanayagam, S. [1 ]
Nashed, R. [2 ]
Martin, G. R. [3 ]
机构
[1] SUNY Buffalo, Dept Civil Struct & Environm Engn, Buffalo, NY 14260 USA
[2] Ardaman & Associates Inc, Orlando, FL USA
[3] Univ Southern Calif, Dept Civil Engn, Los Angeles, CA USA
关键词
energy; geotechnical; engineering; seismic engineering;
D O I
10.1680/grim.2009.162.2.57
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Dynamic compaction (DC) with pre-installed wick drains is an emerging soil improvement technique for densification and liquefaction mitigation of saturated low-permeability loose sands containing non-plastic silts. The compaction process induces excess pore pressures, possible soil liquefaction, and concurrent densification. Wick drains relieve pore pressures and enhance densification. This paper presents a theoretical model for spatial distribution of the energy dissipated in the soil during dynamic compaction, a pore pressure model based on energy principles to estimate the spatial distribution of pore pressures induced during dynamic compaction, and a coupled consolidation model for pore pressure dissipation and soil densification. It also presents a numerical scheme to implement the theoretical models to simulate dynamic compaction at a site and obtain post-improvement soil densities or penetration resistances. A sample set of simulation results are presented. While this paper is limited to the theoretical development of the models, a second companion paper presents the results from this numerical model applied to a few case histories, and a third companion paper presents a methodology for application of the results for liquefaction mitigation design using DC in silty soils supplemented with wick drains.
引用
收藏
页码:57 / 68
页数:12
相关论文
共 50 条
  • [31] Behavior and modeling of static liquefaction of silty sands
    Yamamuro, JA
    Lade, PV
    NUMERICAL MODELS IN GEOMECHANICS - NUMOG VI, 1997, : 27 - 32
  • [32] Undrained monotonic response of clean and silty sands
    Murthy, T. G.
    Loukidis, D.
    Carraroy, J. A. H.
    Prezzi, M.
    Salgado, R.
    GEOTECHNIQUE, 2007, 57 (03): : 273 - 288
  • [33] Determination of the Maximum Density of Carbonate Silty Sands
    Naghavi Alhosseini, Naemeh
    El Naggar, M. Hesham
    Sadrekarimi, Abouzar
    DEFORMATION CHARACTERISTICS OF GEOMATERIALS, 2015, 6 : 1194 - 1200
  • [34] Effect of permeability on liquefaction potential of silty sands
    Güler E.
    Savaş H.
    Afacan K.B.
    Arabian Journal of Geosciences, 2021, 14 (14)
  • [35] The cone penetration test in unsaturated silty sands
    Yang, Hongwei
    Russell, Adrian
    3RD EUROPEAN CONFERENCE ON UNSATURATED SOILS - E-UNSAT 2016, 2016, 9
  • [36] Stiffness degradation and shear strength of silty sands
    Lee, J
    Salgado, R
    Carraro, JAH
    CANADIAN GEOTECHNICAL JOURNAL, 2004, 41 (05) : 831 - 843
  • [37] Size and shape of tamper's base in dynamic compaction of loose sands
    Feng, TW
    Chen, KH
    Su, YT
    PROCEEDINGS OF THE 10TH (2000) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL II, 2000, : 501 - 505
  • [38] A NUMERICAL TOOL FOR DESIGN OF DYNAMIC COMPACTION TREATMENT IN DRY AND MOIST SANDS
    Ghassemi, A.
    Pak, A.
    Shahir, H.
    IRANIAN JOURNAL OF SCIENCE AND TECHNOLOGY TRANSACTION B-ENGINEERING, 2009, 33 (B4): : 313 - 326
  • [39] Test and application of vibro-compaction of dredging silty fine sands without additional backfill materials
    He Kai-sheng
    Guo Xing-fa
    ROCK AND SOIL MECHANICS, 2012, 33 (04) : 1129 - 1133
  • [40] Test and application of vibro-compaction of dredging silty fine sands without additional backfill materials
    He, Kai-Sheng
    Guo, Xing-Fa
    Yantu Lixue/Rock and Soil Mechanics, 2012, 33 (04): : 1129 - 1133