Vortex tuning of a submarine by Liutex force field model
暂无分享,去创建一个
[1] D. Wan,et al. Vortical structures and wakes of a sphere in homogeneous and density stratified fluid , 2021, Journal of Hydrodynamics.
[2] Weiwen Zhao,et al. Parametric study of Liutex-based force field models , 2021 .
[3] Weiwen Zhao,et al. Liutex-based vortex control with implications for cavitation suppression , 2021 .
[4] Haijuan Yu,et al. Liutex-based vortex dynamics: A preliminary study , 2020, Journal of Hydrodynamics.
[5] Chaoqun Liu,et al. Liutex theoretical system and six core elements of vortex identification , 2020 .
[6] D. Wan,et al. Vortex identification methods in marine hydrodynamics , 2020 .
[7] E. Balaras,et al. A numerical investigation about the effects of Reynolds number on the flow around an appended axisymmetric body of revolution , 2019, Journal of Fluid Mechanics.
[8] Chaoqun Liu,et al. An explicit expression for the calculation of the Rortex vector , 2019, Physics of Fluids.
[9] Yalin Li,et al. The Hydrodynamic Noise Suppression of a Scaled Submarine Model by Trailing-Edge Serrations , 2019, 2021 OES China Ocean Acoustics (COA).
[10] T. Jeans,et al. URANS simulations of an axisymmetric submarine hull undergoing dynamic sway , 2019, Ocean Engineering.
[11] E. Balaras,et al. Large-Eddy Simulations of a notional submarine in towed and self-propelled configurations , 2018 .
[12] Chaoqun Liu,et al. Rortex A New Vortex Vector Definition and Vorticity Tensor and Vector Decompositions , 2018, 1802.04099.
[13] S. H. Mousavizadegan,et al. The effect of appendages on the hydrodynamic characteristics of an underwater vehicle near the free surface , 2017 .
[14] Kazem Hejranfar,et al. Effect of vortex generators on hydrodynamic behavior of an underwater axisymmetric hull at high angles of attack , 2017, J. Vis..
[15] Christer Fureby,et al. Experimental and numerical study of a generic conventional submarine at 10° yaw , 2016 .
[16] A. J. Smits,et al. Asymmetries in the wake of a submarine model in pitch , 2015, Journal of Fluid Mechanics.
[17] T. V. Buren,et al. The structure of the wake generated by a submarine model in yaw , 2015 .
[18] Pablo M. Carrica,et al. Submarine Maneuvers Using Direct Overset Simulation of Appendages and Propeller and Coupled CFD/Potential Flow Propeller Solver , 2015 .
[19] M. D. Manshadi,et al. Nose shape effect on the visualized flow field around an axisymmetric body of revolution at incidence , 2015, J. Vis..
[20] Ying Xiong,et al. The method to control the submarine horseshoe vortex by breaking the vortex core , 2014 .
[21] Liu Zhihua,et al. Method to Control Unsteady Force of Submarine Propeller Based on the Control of Horseshoe Vortex , 2012 .
[22] Song Wang,et al. Numerical Simulation and Experimental Study of the New Method of Horseshoe Vortex Control , 2010 .
[23] Alexander Smits,et al. The intermediate wake of a body of revolution at high Reynolds numbers , 2010, Journal of Fluid Mechanics.
[24] Stephen R. Turnock,et al. Influence of turbulence closure models on the vortical flow field around a submarine body undergoing steady drift , 2010 .
[25] Giulio Dubbioso,et al. CFD analysis of turning abilities of a submarine model , 2017 .
[26] Pablo M. Carrica,et al. Overset simulation of a submarine and propeller in towed, self-propelled and maneuvering conditions , 2012 .
[27] Nathan Chase,et al. Simulations of the DARPA Suboff submarine including self-propulsion with the E1619 propeller , 2012 .