JI Shunying, LI Zilin, LI Chunhua, SHANG Jie. Discrete elementmodeling of ice loads on ship hulls in broken ice fields[J]. Acta Oceanologica Sinica, 2013, 32(11): 50-58. doi: 10.1007/s13131-013-0377-2
Citation: JI Shunying, LI Zilin, LI Chunhua, SHANG Jie. Discrete elementmodeling of ice loads on ship hulls in broken ice fields[J]. Acta Oceanologica Sinica, 2013, 32(11): 50-58. doi: 10.1007/s13131-013-0377-2

Discrete elementmodeling of ice loads on ship hulls in broken ice fields

doi: 10.1007/s13131-013-0377-2
  • Received Date: 2012-11-10
  • Rev Recd Date: 2013-05-22
  • Ice loads on a ship hull affect the safety of the hull structure and the ship maneuvering performance in ice-covered regions. A discrete element method (DEM) is used to simulate the interaction between drifting ice floes and a moving ship. The pancake ice floes are modelled with three-dimensional (3-D) dilated disk elements considering the buoyancy, drag force and additional mass induced by the current. The ship hull is modelled with 3D disks with overlaps. Ice loads on the ship hull are determined through the contact detection between ice floe element and ship hull element and the contact force calculation. The influences of different ice conditions (current velocities and directions, ice thicknesses, concentrations and ice floe sizes) and ship speeds are also examined on the dynamic ice force. The simulated results are compared qualitatively well with the existing field data and other numerical results. This work can be helpful in the ship structure design and the navigation security in ice-covered fields.
  • loading
  • Aksnes V. 2010. A simplified interaction model for moored ships in level ice. Cold Regions Science and Technology, 63: 29-39
    Dai M, Shen H H, Hopkins M A, et al. 2004. Wave rafting and the equilibrium pancake ice cover thickness. Journal of Geophysical Research, 109: C07023
    Frederking R. 2010. Ice loading on a ship in discontinuous ice. In: Proceedings of the Twentieth International Offshore and Polar Engineering Conference, Beijing, China. Cupertino: The International Society of Offshore and Polar Engineers (ISOPE), 1188-1195
    Hansen E H, Loset S. 1999a. Modelling floating offshore unitsmoored in broken ice: model description. Cold Regions Science and Technology, 29: 97-106
    Hansen E H, Loset S. 1999b. Modelling floating offshore unitsmoored in broken ice: comparing simulations with ice tank tests. Cold Regions Science and Technology, 29: 107-119
    Hopkins M A. 1998. Four stages of pressure ridging. Journal of Geophysical Research, 103: 21883-21891
    Hopkins M A. 2004. Discrete element modeling with dilated particles . Engineering Computations, 21: 422-430
    HopkinsMA, Shen H H. 2001. Simulation of pancake-ice dynamics in wave field. Annals of Glaciology, 33: 355-360
    Karulin E B, KarulinaM M. 2011. Numerical and physical simulations ofmoored tanker behaviour. Ship and Offshore Structures, 6(3): 179-184
    Konno A. 2009. Resistance evaluation of ship navigation in brash ice channels with physically based modeling. In: Proceedings of the 20th International Conference on Port and Ocean Engineering under Arctic Conditions. Lule?, Sweden: Lulea University of Technology, POAC09-105
    Kujala P, Arughadhoss S. 2012. Statistical analysis of ice crushing pressures on a ship's hull during hull-ice interaction. Cold Regions Science and Technology, 70: 1-11
    LauM, Lawrence K P, Rothenburg L. 2011. Discrete element analysis of ice load on ships and structures. Ships and Offshore Structure, 6(3): 211-221
    Lepparanta M, Lensu M, Lu Q M. 1990. Shear flow of sea ice in the Marginal Ice Zone with collision rheology. Geophysica, 25(1-2): 57-74
    Liu Z, Amdahl J. 2010. A new formulation of the impact mechanics of ship collisions and its application to a ship-iceberg collision. Marine Structures, 23(3): 360-384
    Liu Z, Amdahl J, Løset S. 2011. Plasticity based material modelling of ice and its application to ship-iceberg impacts. Cold Regions Science and Technology, 65(3): 326-334
    Løset S, Kanestrøm Ø, Pytte T. 1998. Model tests of a submerged turret loading concept in level ice, broken ice and pressure ridges. Cold Regions Science and Technology, 27: 57-73
    Polojarvi A, Tuhkuri J. 2009. 3D discrete numerical modelling of ridge keek punch through tests. Cold Regions Scienc and Technology, 56: 18-29
    Sawamura J, Tachibana T. 2011. Development of a numerical simulation for rotating and sliding of the ice floes along a ship hull. In: Proceedings of the 21st International Conference on Port and Ocean Engineering under Arctic Conditions. Montreal, Canada: Curran Associates Inc, POAC11-036
    Sayed M, Kubat I. 2011. Forces on ships transiting pressured ice covers. In: Proceedings of the 21st International Offshore and Polar Engineering Conference. Hawaii, USA: The International Society of Offshore and Polar Engineers (ISOPE), 1087-1092
    Selvadurai A P S, Sepehr K. 1999. Two-dimensional discrete element simulations of ice-structure interaction. International Journal of Solids and Structures, 36: 4919-4940
    Shen H H, HiblerW D, Lepparanta M. 1987. The role of floe collisions in sea ice rheology. Journal of Geophysical Research, 92(C10): 7085-7096
    Su B, Riska K,Moan T. 2010. A numericalmethod for the prediction of ship performance in level ice. Cold Regions Science and Technology, 60(3), 177-188
    Su B, Riska K, Moan T. 2011. Numerical simulation of local ice loads in uniform and randomly varying ice conditions. Cold Regions Science and Technology, 65: 145-159
    Sun S, Shen H H. 2012. Simulation of pancake ice load on a circular cylinder in a wave and current field. Cold Regions Science and Technology, 78: 31-39
    Suyuthi A, Leira B J, Riska K. 2011. Full scale measurement on level ice resistance of icebreaker. In: Proceedings of the ASME 30th International Conference on Ocean, Offshore and Arctic Engineering (OMAE2011), Rotterdam, The Netherlands. Rotterdam:
    The American Society of Mechanical Engineers (ASME), OMAE2011-50066
    Suyuthi A, Leira B J, Riska K. 2012. Statistics of local ice load peaks on ship hulls. Structural Safety, 40: 1-10
    Wang J, Derradji Aouat A. 2011. Numerical assessment for stationary structure (Kulluk) in moving broken ice. In: Proceedings of the 21st International Conference on Port and Ocean Engineering under Arctic Conditions, Montreal, Canada. Montreal: Curran Associates Inc, POAC11-172
    Xu Z, Tartakovsky A M, Pan W. 2012. Discrete-element model for the interaction between ocean waves and sea ice. Physical Review E, 85: 016703
    Zhan D, Agar D, He M, et al. 2010. Numerical simulation of ship maneuvering in pack ice. In: Proceedings of the ASME 2010 29th International Conference on Ocean, Offshore and Arctic Engineering, Shanghai, China. Shanghai: The American Society of Mechanical Engineers (ASME), OMAE2010-21109
    Zhou L, Riska K, Polach R B, et al. 2013. Experiments on level ice loading on an icebreaking tanker with different ice drift angles. Cold Regions Science and Technology, 85: 79-93
    Zhou L, Su B, Riska K, et al. 2012. Numerical simulation of moored structure station keeping in level ice. Cold Regions Science and Technology, 71: 54-66
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (2013) PDF downloads(3397) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return