Numerical prediction of hydrodynamic forces on a ship passing through a lock

被引:0
作者
Hong-zhi Wang
Zao-jian Zou
机构
[1] Shanghai Jiao Tong University,School of Naval Architecture, Ocean & Civil Engineering
[2] Shanghai Jiao Tong University,State Key Laboratory of Ocean Engineering
来源
China Ocean Engineering | 2014年 / 28卷
关键词
ship-lock hydrodynamic interaction; numerical simulation; dynamic mesh; sliding interface;
D O I
暂无
中图分类号
学科分类号
摘要
While passing through a lock, a ship usually undergoes a steady forward motion at low speed. Owing to the size restriction of lock chamber, the shallow water and bank effects on the hydrodynamic forces acting on the ship may be remarkable, which may have an adverse effect on navigation safety. However, the complicated hydrodynamics is not yet fully understood. This paper focuses on the hydrodynamic forces acting on a ship passing through a lock. The unsteady viscous flow and hydrodynamic forces are calculated by applying an unsteady RANS code with a RNG k-ɛ turbulence model. User-defined function (UDF) is compiled to define the ship motion. Meanwhile, the grid regeneration is dealt with by using the dynamic mesh method and sliding interface technique. Numerical study is carried out for a bulk carrier ship passing through the Pierre Vandamme Lock in Zeebrugge at the model scale. The proposed method is validated by comparing the numerical results with the data of captive model tests. By analyzing the numerical results obtained at different speeds, water depths and eccentricities, the influences of speed, water depth and eccentricity on the hydrodynamic forces are illustrated. The numerical method proposed in this paper can qualitatively predict the ship-lock hydrodynamic interaction. It can provide certain guidance on the manoeuvring and control of ships passing through a lock.
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页码:421 / 432
页数:11
相关论文
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