Hydro-elastic aspects of a composite marine propeller in accordance with ply lamination methods
暂无分享,去创建一个
[1] Huei-Jeng Lin,et al. Nonlinear hydroelastic behavior of propellers using a finite-element method and lifting surface theory , 1996 .
[2] Mitul Luhar,et al. Flow‐induced reconfiguration of buoyant and flexible aquatic vegetation , 2011 .
[3] Yin Lu Young,et al. Time-dependent hydroelastic analysis of cavitating propulsors , 2007 .
[4] Yin Lu Young,et al. Hydroelastic Tailoring of Composite Naval Propulsors , 2007 .
[5] Michael R. Motley,et al. Utilizing fluid-structure interactions to improve energy efficiency of composite marine propellers in spatially varying wake , 2009 .
[6] Jong Jae Lee,et al. A potential based panel method for the analysis of marine propellers in steady flow , 1987 .
[7] Jung-Chun Suh,et al. Hydro-elastic analysis of marine propellers based on a BEM-FEM coupled FSI algorithm , 2014 .
[8] José Pedro Albergaria Amaral Blasques,et al. Hydro-elastic analysis and optimization of a composite marine propeller , 2010 .
[9] Hu Dai,et al. Fluid-structure interaction involving large deformations: 3D simulations and applications to biological systems , 2014, J. Comput. Phys..
[10] J E Kerwin,et al. PREDICTION OF STEADY AND UNSTEADY MARINE PROPELLER PERFORMANCE BY NUMERICAL LIFTING-SURFACE THEORY , 1978 .
[11] Xiao Dong He,et al. Hydroelastic optimisation of a composite marine propeller in a non-uniform wake , 2012 .
[12] J. L. Hess,et al. Calculation of Steady Flow About Propellers Using a Surface Panel Method , 1985 .
[13] Yin Lu Young,et al. Fluid–structure interaction analysis of flexible composite marine propellers , 2008 .
[14] Tetsuji Hoshino,et al. Hydrodynamic analysis of propellers in unsteady flow using a surface panel method , 1989 .
[15] Kwang Jun Paik,et al. Simulation of fluid-structure interaction for surface ships with linear/nonlinear deformations , 2010 .