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  • Ma, Ming  (3)
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  • 1
    Online Resource
    Online Resource
    The Society of Naval Architects and Marine Engineers ; 2016
    In:  Journal of Ship Production and Design Vol. 32, No. 04 ( 2016-11-1), p. 216-225
    In: Journal of Ship Production and Design, The Society of Naval Architects and Marine Engineers, Vol. 32, No. 04 ( 2016-11-1), p. 216-225
    Abstract: As the three-dimensional (3D) finite element model (FEM) has become the de facto standard for ship structural design, interest in accurately transferring seakeeping loads to panel-based structural models has increased dramatically in recent years. In today's design practices, panel-based hydrodynamic analyses are often used for mapping seakeeping loads to 3D FEM structural models. However, 3D panel-based hydrodynamic analyses are computationally expensive. For monohull ships, methods based on strip theories have been successfully used in the industry for many years. They are computationally efficient, and provide good predictions for motions and hull girder loads. However, many strip theory methods provide only hull girder sectional forces and moments, such as vertical bending moment and vertical shear force, which are difficult to apply to 3D finite element structural models. Previously, the authors have proposed a hybrid strip theory method to transfer 2D strip theory-based seakeeping loads to 3D FEM. In the hybrid approach, the velocity potentials of strip sections are first calculated based on the ordinary 2D strip theories. The velocity potentials of a finite element panel are obtained from the interpolation of the velocity potentials of the strip sections. The panel pressures are then computed based on Bernoulli's equation. Integration of the pressure over the FEM wetted panels yields the hydrodynamic forces and moments. The equations of motion are then formulated based on the FEM. The method not only produces excellent ship motion results, but also results in a perfectly balanced structural model. In this article, the hybrid approach is extended to the 2.5D high-speed strip theory. The simple Rankine source function is used to compute velocity potentials. The original linearized free surface condition, where the forward speed term is not ignored, is used to formulate boundary integral equations. A model based on the Series-64 hull form was used for validating the proposed hybrid method. The motion response amplitude operators are in good agreement with VERES's 2.5D strip theory and with experimental results. Finally, an example is provided for transferring seakeeping loads obtained by the 2.5D hybrid strip theory to a 3D FEM.
    Type of Medium: Online Resource
    ISSN: 2158-2866 , 2158-2874
    Language: English
    Publisher: The Society of Naval Architects and Marine Engineers
    Publication Date: 2016
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  • 2
    Online Resource
    Online Resource
    Informa UK Limited ; 2014
    In:  Ships and Offshore Structures Vol. 9, No. 3 ( 2014-05-04), p. 257-265
    In: Ships and Offshore Structures, Informa UK Limited, Vol. 9, No. 3 ( 2014-05-04), p. 257-265
    Type of Medium: Online Resource
    ISSN: 1744-5302 , 1754-212X
    Language: English
    Publisher: Informa UK Limited
    Publication Date: 2014
    detail.hit.zdb_id: 2378754-5
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  • 3
    Online Resource
    Online Resource
    The Society of Naval Architects and Marine Engineers ; 2016
    In:  Journal of Ship Production and Design Vol. 32, No. 4 ( 2016-11-01), p. 216-225
    In: Journal of Ship Production and Design, The Society of Naval Architects and Marine Engineers, Vol. 32, No. 4 ( 2016-11-01), p. 216-225
    Type of Medium: Online Resource
    ISSN: 2158-2866 , 2158-2874
    Language: English
    Publisher: The Society of Naval Architects and Marine Engineers
    Publication Date: 2016
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
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