• Title of article

    Comparison of linear spring and nonlinear FEM methods in dynamic coupled analysis of floating structure and mooring system

  • Author/Authors

    Kim، نويسنده , , Byoung Wan and Sung، نويسنده , , Hong Gun and Kim، نويسنده , , Jin Ha and Hong، نويسنده , , Sa Young، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2013
  • Pages
    23
  • From page
    205
  • To page
    227
  • Abstract
    This paper compares the dynamic coupled behavior of floating structure and mooring system in time domain using two numerical methods for the mooring lines such as the linear spring method and the nonlinear FEM (Finite Element Method). In the linear spring method, hydrodynamic coefficients and forces on the floating body are calculated using BEM (Boundary Element Method) and the time domain equation is derived using convolution. The coupled solution is obtained by simply adding the pre-determined spring constants of the mooring lines into the floating body equation. In FEM, the minimum energy principle is applied to formulate the nonlinear dynamic equation of the mooring system with a discrete numerical model. The ground contact model and Morison formula for drag forces are also included in the formulation. The coupled solution is obtained by iteratively solving the floating body equation and the FEM equation of the mooring system. Two example structures such as weathervane ship and semi-submersible structure are analyzed using linear spring and nonlinear FEM methods and the difference of those two methods are presented. By analyzing the cases with or without surge-pitch or sway-roll coupling stiffness of mooring lines in the linear spring method, the effect of coupling stiffness of the mooring system is also discussed.
  • Keywords
    Floating structure , Mooring line , coupled analysis , Spring method , Coupled stiffness , FEM
  • Journal title
    Journal of Fluids and Structures
  • Serial Year
    2013
  • Journal title
    Journal of Fluids and Structures
  • Record number

    2214250