A COUPLED METHODOLOGY FOR WAVE-BODY INTERACTIONS AT THE SCALE OF A FARM OF WAVE ENERGY CONVERTERS INCLUDING IRREGULAR BATHYMETRY

被引:0
|
作者
Charrayre, Francois [1 ]
Peyrard, Christophe [1 ]
Benoit, Michel [1 ]
Babarit, Aurelien [2 ]
机构
[1] Ecole Ponts Paris Tech, CEREMA, EDF, St Venant Hydraul Lab, F-78400 Chatou, France
[2] LUNAM Univ, Ecole Cent Nantes, CNRS, F-44300 Nantes, France
关键词
wave energy converter; wave-body interaction; shallow water; Kochin function; far field approximation;
D O I
暂无
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Knowledge of the wave perturbation caused by an array of Wave Energy Converters (WEC) is of great concern, in particular for estimating the interaction effects between the various WECs and determining the modification of the wave field at the scale of the array, as well as possible influence on the hydrodynamic conditions in the surroundings. A better knowledge of these interactions will also allow a more efficient layout for future WEC farms. The present work focuses on the interactions of waves with several WECs in an array. Within linear wave theory and in frequency domain, we propose a methodology based on the use of a BEM (Boundary Element Method) model (namely Aquaplus) to solve the radiation-diffraction problem locally around each WEC, and to combine it with a model based on the mild slope equation at the scale of the array. The latter model (ARTEMIS software) solves the Berkhoff's equation in 2DH domains (2 dimensional code with a z-dependence), considering irregular bathymetries. In fact, the Kochin function (a far field approximation) is used to propagate the perturbations computed by Aquaplus into Artemis, which is well adapted for a circular wave representing the perturbation of an oscillating body. This approximation implies that the method is only suitable for well separated devices. A main advantage of this coupling technique is that Artemis can deal with variable bathymetry. It is important when the wave farm is in shallow water or in nearshore areas. The methodology used for coupling the two models, with the underlying assumptions is detailed first. Validations test-cases are then carried out with simple bodies (namely heaving vertical cylinders) to assess the accuracy and efficiency of the coupling scheme. These tests also allow to analyze and to quantify the magnitude of the interactions between the WECs inside the array.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Wave-body interactions among energy absorbers in a wave farm
    Zhong, Qian
    Yeung, Ronald W.
    APPLIED ENERGY, 2019, 233 : 1051 - 1064
  • [2] The role of tertiary wave interactions in wave-body problems
    Molin, B
    Remy, F
    Kimmoun, O
    Jamois, E
    JOURNAL OF FLUID MECHANICS, 2005, 528 : 323 - 354
  • [3] Numerical method in wave-body interactions
    Mousavizadegan S.H.
    Rahman M.
    Journal of Applied Mathematics and Computing, 2005, 17 (1-2) : 73 - 91
  • [4] A methodology for production and cost assessment of a farm of wave energy converters
    Beels, Charlotte
    Troch, Peter
    Kofoed, Jens Peter
    Frigaard, Peter
    Kringelum, Jon Vindahl
    Kromann, Peter Carsten
    Donovan, Martin Heyman
    De Rouck, Julien
    De Backer, Griet
    RENEWABLE ENERGY, 2011, 36 (12) : 3402 - 3416
  • [5] OSCILLATING WAVE SURGE CONVERTERS: INTERACTIONS IN A WAVE FARM
    Sarkar, Dripta
    Renzi, Emiliano
    Dias, Frederic
    33RD INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, 2014, VOL 9A: OCEAN RENEWABLE ENERGY, 2014,
  • [6] On the modeling of highly nonlinear wave-body interactions
    Yang, Chi
    Loehner, Rainald
    PROCEEDINGS OF THE SIXTEENTH (2006) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 3, 2006, : 256 - +
  • [7] Computation of forward-speed wave-body interactions
    Qiu, Wei
    Peng, Hongxuan
    PROCEEDINGS OF THE SIXTEENTH (2006) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 3, 2006, : 249 - +
  • [8] An independent geometry modelling method in wave-body interactions
    Mousavizadegan, SH
    Rahman, M
    FLUID STRUCTURE INTERACTION AND MOVING BOUNDARY PROBLEMS, 2005, 84 : 301 - 310
  • [9] Nonlinear wave-body interactions by the chimera Laplace method
    Kang, CH
    Chen, HC
    PROCEEDINGS OF THE ELEVENTH (2001) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL III, 2001, : 288 - 294
  • [10] NUMERICAL INVESTIGATION OF WAVE-BODY INTERACTIONS IN SHALLOW WATER
    Luo, Yi
    Vada, Torgeir
    Greco, Marilena
    33RD INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, 2014, VOL 8A: OCEAN ENGINEERING, 2014,