Runup and green water velocities due to breaking wave impinging and overtopping

被引:75
|
作者
Ryu, Yonguk [1 ]
Chang, Kuang-An [1 ]
Mercier, Richard [1 ]
机构
[1] Texas A&M Univ, Zachry Dept Civil Engn, College Stn, TX 77843 USA
关键词
D O I
10.1007/s00348-007-0332-0
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The present study investigates, through measurements in a 2D wave tank, the velocity fields of a plunging breaking wave impinging on a structure. As the wave breaks and overtops the structure, so-called green water is generated. The flow becomes multi-phased and chaotic as a large aerated region is formed in the flow in the vicinity of the structure while water runs up onto the structure. In this study, particle image velocimetry (PIV) and its derivative, bubble image velocimetry (BIV), were employed to measure the velocity field in front and on top of the structure. Mean and turbulence properties were obtained through ensemble averaging repeated tests. The dominant and maximum velocity of the breaking wave and associated green water are discussed for the three distinct phases of the impingement-runup-overtopping sequence. Initially the flow is mainly horizontal right before the breaking wave impinges on the structure. The flow then becomes primarily vertical and rushes upward along the front wall of the structure right after the impingement. Subsequently, the flow becomes mainly horizontal on top of the structure as the remaining momentum in the wave crest carries the green water through. The distribution of the green water velocity along the top of the structure has a nonlinear profile and the maximum velocity occurs near the front of the fast moving water. Using the measured data and applying dimensional analysis, a similarity profile for the green water flow on top of the structure was obtained, and a prediction equation was formulated. The prediction equation may be used to predict the green water velocity caused by extreme waves in a hurricane.
引用
收藏
页码:555 / 567
页数:13
相关论文
共 50 条
  • [31] Numerical simulation of wave overtopping using two dimensional breaking wave model
    Soliman, A
    Raslan, MS
    Reeve, DE
    COASTAL ENGINEERING VI: COMPUTER MODELLING AND EXPERIMENTAL MEASUREMENTS OF SEAS AND COASTAL REGIONS, 2003, 9 : 439 - 447
  • [32] SURF-SIMILARITY PARAMETER FOR BREAKING SOLITARY-WAVE RUNUP
    KOBAYASHI, N
    KARJADI, EA
    JOURNAL OF WATERWAY PORT COASTAL AND OCEAN ENGINEERING-ASCE, 1994, 120 (06): : 645 - 650
  • [33] Vulnerability of Buildings on Coastal Dikes due to Wave Overtopping
    Chen, Xuexue
    Jonkman, Sebastiaan N.
    Pasterkamp, Sander
    Suzuki, Tomohiro
    Altomare, Corrado
    WATER, 2017, 9 (06):
  • [34] Green water overtopping analyzed with a SPH model
    Gómez-Gesteira, M
    Cerqueiroa, D
    Crespoa, C
    Dalrymple, RA
    OCEAN ENGINEERING, 2005, 32 (02) : 223 - 238
  • [35] WAVE TRANSMISSION BY OVERTOPPING DUE TO RANDOM WAVES.
    Hwang, Ching-Her
    Tang, Fredrick L.W.
    1600, (15):
  • [36] OVERLOAD BORE PROPAGATION DUE TO AN OVERTOPPING WAVE.
    Cox, Jack C.
    Machemehl, Jerry
    Journal of Waterway, Port, Coastal and Ocean Engineering, 1986, 112 (01): : 161 - 163
  • [37] Numerical Modeling of Wave Evolution and Runup in Shallow Water
    Zhi Dong
    Jie-min Zhan
    Journal of Hydrodynamics, 2009, 21 : 731 - 738
  • [38] Numerical Simulation of Wave Runup and Overtopping for Short and Long Waves Using Staggered Grid Variational Boussinesq
    Adytia, Didit
    Pudjaprasetya, Sri Redjeki
    JOURNAL OF EARTHQUAKE AND TSUNAMI, 2020, 14 (05)
  • [39] NUMERICAL MODELING OF WAVE EVOLUTION AND RUNUP IN SHALLOW WATER
    Dong Zhi
    Zhan Jie-min
    JOURNAL OF HYDRODYNAMICS, 2009, 21 (06) : 731 - 738
  • [40] An analytical model of wave overtopping flow velocities on dike crests and landward slopes
    van Bergeijk, Vera M.
    Warmink, Jord J.
    van Gent, Marcel R. A.
    Hulscher, Suzanne J. M. H.
    COASTAL ENGINEERING, 2019, 149 : 28 - 38