A coupled-mode model for the hydroelastic analysis of large floating bodies over variable bathymetry regions

被引:62
作者
Belibassakis, KA [1 ]
Athanassoulis, GA [1 ]
机构
[1] Natl Tech Univ Athens, Sch Naval Architecture & Marine Engn, Sect Ship & Marine Hydrodynam, GR-15773 Athens, Greece
关键词
D O I
10.1017/S0022112005004003
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The consistent coupled-mode theory (Athanassoulis & Belibassakis, J. Fluid Mech. vol. 389, 1999, p. 275) is extended and applied to the hydroelastic analysis of large floating bodies of shallow draught or ice sheets of small and uniform thickness, lying over variable bathymetry regions. A parallel-contour bathymetry is assumed, characterized by a continuous depth function of the form h(x,y)=h(x), attaining constant, but possibly different, values in the semi-infinite regions x < a and x > b. We consider the scattering problem of harmonic, obliquely incident, surface waves, under the combined effects of variable bathymetry and a floating elastic plate, extending from x = a to x = b and -infinity < y < infinity. Under the assumption of small-amplitude incident waves and small plate deflections, the hydroelastic problem is formulated within the context of linearized water-wave and thin-elastic-plate theory. The problem is reformulated as a transition problem in a bounded domain, for which an equivalent, Luke-type (unconstrained), variational principle is given. In order to consistently treat the wave field beneath the elastic floating plate, down to the sloping bottom boundary, a complete, local, hydroelastic-mode series expansion of the wave field is used, enhanced by an appropriate sloping-bottom mode. The latter enables the consistent satisfaction of the Neumann bottom-boundary condition on a general topography. By introducing this expansion into the variational principle, an equivalent coupled-mode system of horizontal equations in the plate region (a <= x <= b) is derived. Boundary conditions are also provided by the variational principle, ensuring the complete matching of the wave field at the vertical interfaces (x = a and x = b), and the requirements that the edges of the plate are free of moment and shear force. Numerical results concerning floating structures lying over flat, shoaling and corrugated seabeds are presented and compared, and the effects of wave direction, bottom slope and bottom corrugations on the hydroelastic response are presented and discussed. The present method can be easily extended to the fully three-dimensional hydroelastic problem, including bodies or structures characterized by variable thickness (draught), flexural rigidity and mass distributions.
引用
收藏
页码:221 / 249
页数:29
相关论文
共 48 条
[1]   The influence of water depth on the hydroelastic response of a very large floating platform [J].
Andrianov, AI ;
Hermans, AJ .
MARINE STRUCTURES, 2003, 16 (05) :355-371
[2]   A consistent coupled-mode theory for the propagation of small-amplitude water waves over variable bathymetry regions [J].
Athanassoulis, GA ;
Belibassakis, KA .
JOURNAL OF FLUID MECHANICS, 1999, 389 :275-301
[3]  
ATHANASSOULIS GA, 2002, P 12 INT OFFSH POL C, V3, P248
[4]   Ocean waves and ice sheets [J].
Balmforth, NJ ;
Craster, RV .
JOURNAL OF FLUID MECHANICS, 1999, 395 :89-124
[5]   A coupled-mode model for the refraction-diffraction of linear waves over steep three-dimensional bathymetry [J].
Belibassakis, KA ;
Athanassoulis, GA ;
Gerostathis, TP .
APPLIED OCEAN RESEARCH, 2001, 23 (06) :319-336
[6]   A GENERAL LINEAR HYDROELASTICITY THEORY OF FLOATING STRUCTURES MOVING IN A SEAWAY [J].
BISHOP, RED ;
PRICE, WG ;
WU, YS .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1986, 316 (1538) :375-426
[7]  
Ertekin RC, 1999, J SHIP RES, V43, P241
[8]  
ERTEKIN RC, 2001, MAR STRUCT
[9]  
ERTEKIN RC, 2000, MAR STRUCT
[10]   Wave scattering by narrow cracks in ice sheets floating on water of finite depth [J].
Evans, DV ;
Porter, R .
JOURNAL OF FLUID MECHANICS, 2003, 484 :143-165