Parametric Generation of Planing Hulls with NURBS Surfaces

被引:2
|
作者
Perez-Arribas, Francisco L. [1 ]
Peter-Cosma, Ernoe [1 ]
机构
[1] Univ Politecn Madrid, Naval Architecture Sch Madrid, Madrid, Spain
来源
JOURNAL OF SHIP RESEARCH | 2013年 / 57卷 / 04期
关键词
planing hulls; hard-chine boats; B-splines; parametric design; ship surface design; DESIGN;
D O I
10.5957/JOSR.57.4.130031
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
This article presents a mathematical method for producing hard-chine ship hulls based on a set of numerical parameters that are directly related to the geometric features of the hull and uniquely define a hull form for this type of ship. The term planing hull is used generically to describe the majority of hard-chine boats being built today. This article is focused on unstepped, single-chine hulls. B-spline curves and surfaces were combined with constraints on the significant ship curves to produce the final hull design. The hard-chine hull geometry was modeled by decomposing the surface geometry into boundary curves, which were defined by design constraints or parameters. In planing hull design, these control curves are the center, chine, and sheer lines as well as their geometric features including position, slope, and, in the case of the chine, enclosed area and centroid. These geometric parameters have physical, hydrodynamic, and stability implications from the design point of view. The proposed method uses two-dimensional orthogonal projections of the control curves and then produces three-dimensional (3-D) definitions using B-spline fitting of the 3-D data points. The fitting considers maximum deviation from the curve to the data points and is based on an original selection of the parameterization. A net of B-spline curves (stations) is then created to match the previously defined 3-D boundaries. A final set of lofting surfaces of the previous B-spline curves produces the hull surface.
引用
收藏
页码:241 / 261
页数:21
相关论文
共 50 条
  • [31] Trim effect on the resistance of sailing planing hulls
    Viola, Ignazio Maria
    Enlander, Joshua
    Adamson, Hamish
    OCEAN ENGINEERING, 2014, 88 : 187 - 193
  • [32] Dynamic highlight line generation for locally deforming NURBS surfaces
    Yong, JH
    Cheng, F
    Chen, YF
    Stewart, P
    Miura, KT
    COMPUTER-AIDED DESIGN, 2003, 35 (10) : 881 - 892
  • [33] A Traditional Quadrilateral NURBS Surfaces Generation Method using MATLAB
    Li, Jiang
    INTERNATIONAL CONFERENCE ON ADVANCES IN ENGINEERING 2011, 2011, 24 : 672 - 676
  • [34] A precise direct parametric interpolation method for NURBS-toolpath generation
    Song D.-N.
    Jia Z.-Y.
    Ma J.-W.
    Zhang N.
    Si L.-K.
    International Journal of Industrial and Systems Engineering, 2019, 31 (02): : 278 - 286
  • [35] Algorithms for G1 connection of multiple parametric bicubic NURBS surfaces
    Charles K. Chui
    Ming-Jun Lai
    Jian-ao Lian
    Numerical Algorithms, 2000, 23 : 285 - 313
  • [36] Algorithms for G1 connection of multiple parametric bicubic NURBS surfaces
    Chui, CK
    Lai, MJ
    Lian, JA
    NUMERICAL ALGORITHMS, 2000, 23 (04) : 285 - 313
  • [37] Hulls of Surfaces
    Izzo, Alexander J.
    Stout, Edgar Lee
    INDIANA UNIVERSITY MATHEMATICS JOURNAL, 2018, 67 (05) : 2061 - 2087
  • [38] PREDICTION OF PRESSURE LOADS ON PLANING HULLS IN CALM WATER
    WELLICOME, JF
    JAHANGEER, JM
    NAVAL ARCHITECT, 1979, (02): : T53 - T70
  • [39] USE OF A WATER CHANNEL FOR MODEL TESTS ON PLANING HULLS
    MILLWARD, A
    JOURNAL OF HYDRONAUTICS, 1978, 12 (03): : 129 - 133
  • [40] Three-dimensional pressure distribution on planing hulls
    Pennino, S.
    Klymenko, H.
    Scamardella, A.
    Mancini, S.
    Begovic, E.
    MARITIME TECHNOLOGY AND ENGINEERING 3, VOLS 1-2, 2016, : 353 - 360