Empirical Predictions on Wave Overtopping for Overtopping Wave Energy Converters: A Systematic Review

被引:2
|
作者
Cao, Deping [1 ]
He, Jie [1 ]
Chen, Hao [2 ]
机构
[1] Tongji Univ, Dept Hydraul Engn, 1239 Siping Rd, Shanghai 200092, Peoples R China
[2] Newcastle Univ, Fac Sci Agr & Engn, Newcastle Upon Tyne NE1 7RU, England
关键词
breakwaters; empirical formulas; experimental model; overtopping; Wave Dragon; PERFORMANCE; DRAGON;
D O I
10.3390/pr12091940
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Over the past three decades, the development and testing of various overtopping wave energy converters (OWECs) have highlighted the importance of accurate wave run-up and overtopping predictions on those devices. This study systematically reviews the empirical formulas traditionally used for predicting overtopping across different types of breakwaters by assessing their strengths, limitations, and applicability to OWECs. This provides a foundation for future research and development in OWECs. Key findings reveal that empirical formulas for conventional breakwaters can be categorized as mild or steep slopes and vertical structures based on the angle of the slope. For the same relative crest freeboards, the dimensionless average overtopping discharge of mild slopes is larger than that of vertical structures. However, the formula features predictions within a similar range for small relative crest freeboards. The empirical formulas for predicting overtopping in fixed and floating OWECs are modified from the predictors developed for conventional breakwaters with smooth, impermeable and linear slopes. Different correction coefficients are introduced to account for the effects of limited draft, inclination angle, and low relative freeboard. The empirical models for floating OWECs, particularly the Wave Dragon model, have been refined through prototype testing to account for the unique 3D structural reflector's influence and dynamic wave interactions.
引用
收藏
页数:18
相关论文
共 50 条
  • [41] Wave overtopping over a sea dike
    Li, TQ
    Troch, P
    De Rouck, J
    JOURNAL OF COMPUTATIONAL PHYSICS, 2004, 198 (02) : 686 - 726
  • [42] Wave overtopping models and seawall freeboards
    Hedges, TS
    Reis, MT
    COASTAL ENGINEERING AND MARINA DEVELOPMENTS, 1999, 3 : 567 - 576
  • [43] Modelling Wave Transmission and Overtopping Based on Energy Balance Equation
    JI Qiaoling
    DONG Sheng
    JournalofOceanUniversityofChina, 2018, 17 (05) : 1033 - 1043
  • [44] Wave overtopping at vertical and steep seawalls
    Allsop, W
    Bruce, T
    Pearson, J
    Besley, P
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-MARITIME ENGINEERING, 2005, 158 (03) : 103 - 114
  • [45] Innovative rubble mound breakwaters for overtopping wave energy conversion
    Vicinanza, Diego
    Contestabile, Pasquale
    Norgaard, Jorgen Quvang Harck
    Andersen, Thomas Lykke
    COASTAL ENGINEERING, 2014, 88 : 154 - 170
  • [46] THE INFLUENCE OF ANGLE OF INCIDENT WAVE ON IRREGULAR WAVE OVERTOPPING
    Yan, Shichang
    Chen, Guoping
    Chen, Jia
    Ji, Wenwen
    PROCEEDINGS OF THE CHINESE-GERMAN JOINT SYMPOSIUM ON HYDRAULIC AND OCEAN ENGINEERING, 2008, : 551 - 553
  • [47] Wave Overtopping of Coastal Structures. Physical Model versus Desktop Predictions
    Mariani, A.
    Blacka, M. J.
    Cox, R. J.
    Coghlan, I. R.
    Carley, J. T.
    JOURNAL OF COASTAL RESEARCH, 2009, : 534 - 538
  • [48] Waves and wave overtopping on reservoir structures
    Allsop W.
    Williamson T.
    Pullen T.
    Dams and Reservoirs, 2010, 20 (02) : 59 - 68
  • [49] Wave overtopping on smooth and step dike
    Juang, JT
    Lin, CF
    Lin, WL
    PROCEEDINGS OF THE FOURTEENTH (2004) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 3, 2004, : 701 - 706
  • [50] Wave overtopping of rubble mound breakwaters
    Hebsgaard, M
    Sloth, P
    Juhl, J
    COASTAL ENGINEERING 1998, VOLS 1-3, 1999, : 2235 - 2248