Simulation of wave impact breakwater considering structural response and shape of breakwater axis

被引:0
作者
Lou, Yun-Feng [1 ,2 ]
Li, Hao [3 ]
Ge, Hong-Hui [4 ]
Ma, Bo [4 ]
Jin, Xian-Long [1 ,2 ]
机构
[1] School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai
[2] State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai
[3] Aerospace System Engineering Institute, Shanghai Academy of Spaceflight Technology, Shanghai
[4] Shanghai Nuclear Engineering Research and Design Institute, Shanghai
来源
Gongcheng Lixue/Engineering Mechanics | 2015年 / 32卷 / 02期
关键词
Breakwater; Multi-material ALE; Structural response; Wave impact; Wave pressure;
D O I
10.6052/j.issn.1000-4750.2013.09.0832
中图分类号
学科分类号
摘要
The wave pressure and the structural response under wave impact were studied using the multi-material ALE (Arbitrary Lagrangian-Eulerian) method. Firstly, a breakwater-wave coupling model based on the physical model was constructed. Meanwhile, the model and approaches were validated by comparison with wave theory and experimental data. Secondly, both straight and curved breakwater-wave coupling models were constructed. The influences of the structure response, the section size and the shape of breakwater axis on the wave impact were analyzed. The results showed that the maximum wave pressure on the front and rear seawall generally appear at the static water level and the bottom of rear wall, respectively. The front wall and breakwater width have a protective effect on the rear wall. Because of the structural response effect, the pressures on the front seawall are increased while the pressures at the rear seawall are decreased. Both the wave pressure and structural stress show peaks in the curved segment of the overall model. ©, 2015, Tsinghua University. All right reserved.
引用
收藏
页码:241 / 249
页数:8
相关论文
共 18 条
  • [1] Cuomo G., Allsop W., Bruce T., Breaking wave loads at vertical seawalls and breakwaters, Coastal Engineering, 57, 4, pp. 424-439, (2010)
  • [2] Hao S., Dong G., Zong Z., A nonlinear fluid-structure analysis of rings subjected to water waves, Engineering Mechanics, 24, 7, pp. 53-58, (2007)
  • [3] Li Z., Bie S., Ren Z., Numerical simulation on wave motion in rubble-mound breakwater, Engineering Mechanics, 25, pp. 54-57, (2008)
  • [4] Luo X., Ma Y., Numerical model for focused wave transformation over a submerged bar, Engineering Mechanics, 30, 4, pp. 466-471, (2013)
  • [5] Cheng Y., Xue W., Guo F., Numerical simulation of internal cnoidal waves and their actions on piers, The Ocean Engineering, 31, 1, pp. 61-66, (2013)
  • [6] Hur D.S., Mizutani N., Numerical estimation of the wave forces acting on a three dimensional body on submerged breakwater, Coastal Engineering, 47, 3, pp. 329-345, (2003)
  • [7] Losada I.J., Lara J.L., Guanche R., Numerical analysis of wave overtopping of rubble mound breakwaters, Coastal Engineering, 55, 1, pp. 47-62, (2008)
  • [8] Hsiao S., Lin T., Tsunami-like solitary waves impinging and overtopping an impermeable seawall: Experiment and RANS modeling, Coastal Engineering, 57, 1, pp. 1-18, (2010)
  • [9] Guanche R., Losada I.J., Lara J.L., Numerical analysis of wave loads for coastal structure stability, Coastal Engineering, 56, 5-6, pp. 543-558, (2009)
  • [10] Wang W., Yan Y., Zhang L., Zhang C., A monolithic fluid-structure interaction approach based on the pressure Poisson equation, Engineering Mechanics, 29, 3, pp. 9-15, (2012)