Analysis of unsaturated soil columns with application to bulk cargo liquefaction in ships

被引:16
|
作者
Airey, David W. [1 ]
Ghorbani, Javad [2 ]
机构
[1] Univ Sydney, Sch Civil Engn, Sydney, NSW 2006, Australia
[2] Monash Univ, Dept Civil Engn, SPARC Hub, Clayton, Vic 3800, Australia
基金
澳大利亚研究理事会;
关键词
Numerical analysis; Unsaturated Soil; Liquefaction; Ore cargo; ELASTOPLASTIC RESPONSE; MODEL; SAND; SATURATION; PLASTICITY; RESISTANCE; FRAMEWORK; SANISAND; FINES; FLOW;
D O I
10.1016/j.compgeo.2021.104402
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Over the last 40 years, there have been several ship losses carrying granular mineral ores that are believed to have been caused by the sudden shifting of the cargo as a result of liquefaction. It is known that the initial moisture content during loading is important for cargo types which are considered susceptible to liquefaction. To limit the moisture content, the degree of saturation must be below 80% in compaction tests designed to reproduce the energy associated with loading cargo into a ship's hold. During transport, ships can experience storms causing cyclic loading which leads to densification of the cargo and increases in the degree of saturation. There can also be transient increases in pore pressure and associated reductions in the cargo material's resistance, which when the ship heels increase the likelihood of the cargo shifting and in the extreme, the ship capsizing. In this paper, a recently developed fully coupled dynamic finite element analysis and constitutive model for unsaturated soil is used to perform a parametric study to explore the capabilities of the numerical code and the mechanics of the problem. The numerical analyses are shown to be capable of running for up to 2500 cycles and simulating both cyclic loading and simultaneous consolidation and drainage, a computationally very demanding task. Outcomes of the analyses are used to discuss the factors influencing cargo stability and vessel instability.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] Numerical investigation of solid bulk cargo liquefaction
    Ju, Lei
    Vassalos, Dracos
    Wang, Qing
    Wang, Yongkui
    Liu, Yang
    OCEAN ENGINEERING, 2018, 159 : 333 - 347
  • [2] Fumigation on bulk cargo ships: a chemical threat to seafarers
    Djurhuus, Rune
    INTERNATIONAL MARITIME HEALTH, 2021, 72 (03) : 206 - 216
  • [3] Application of IF-TOPSIS method on fixed fire fighting systems for cargo hold fires on the dry/bulk cargo ships
    Yazir, Devran
    OCEAN ENGINEERING, 2022, 260
  • [4] Solid bulk cargo liquefaction: Stability of liquid bridges
    Ju, Lei
    Li, Jiayuan
    Wang, Qing
    Li, Yunpeng
    Vassolos, Dracos
    Yang, Zhou
    PHYSICS OF FLUIDS, 2022, 34 (08)
  • [5] Numerical Analysis of Stone Columns for the Reduction of the Risk of Soil Liquefaction
    Jamal Hleibieh
    Ivo Herle
    Transportation Infrastructure Geotechnology, 2020, 7 : 618 - 633
  • [6] Numerical Analysis of Stone Columns for the Reduction of the Risk of Soil Liquefaction
    Hleibieh, Jamal
    Herle, Ivo
    TRANSPORTATION INFRASTRUCTURE GEOTECHNOLOGY, 2020, 7 (04) : 618 - 633
  • [7] Numerical Analysis of Liquefaction Susceptibility of Reinforced Soil with Stone Columns
    Ben Salem, Zeineb
    Frikha, Wissem
    Bouassida, Mounir
    SOIL DYNAMICS AND SOIL-STRUCTURE INTERACTION FOR RESILIENT INFRASTRUCTURE, 2018, : 57 - 66
  • [8] Techno-economic analysis of renewable fuels for ships carrying bulk cargo in Europe
    Boris Stolz
    Maximilian Held
    Gil Georges
    Konstantinos Boulouchos
    Nature Energy, 2022, 7 : 203 - 212
  • [9] Techno-economic analysis of renewable fuels for ships carrying bulk cargo in Europe
    Stolz, Boris
    Held, Maximilian
    Georges, Gil
    Boulouchos, Konstantinos
    NATURE ENERGY, 2022, 7 (02) : 203 - 212
  • [10] BULK CARGO INVENTORY COSTS AND THEIR EFFECT ON THE DESIGN OF SHIPS AND TERMINALS
    BENFORD, H
    MARINE TECHNOLOGY AND SNAME NEWS, 1981, 18 (04): : 344 - 349