Trans-media resistance investigation of hybrid aerial underwater vehicle base on hydrodynamic experiments and machine learning
暂无分享,去创建一个
Zheng Zeng | L. Lian | Tong Wei | Junping Li
[1] D. Wan,et al. Numerical investigation of the water entry of inclined cylinders using dynamic sliding mesh method , 2022, Ocean Engineering.
[2] Yunxing Zhang,et al. Numerical investigation on the water entry of bow-flare section with different bulbous bow shapes , 2022, Ocean Engineering.
[3] Zheng Zeng,et al. Experimental study on trans-media hydrodynamics of a cylindrical hybrid unmanned aerial underwater vehicle , 2022, Ocean Engineering.
[4] Zheng Zeng,et al. Dynamics and control of hybrid aerial underwater vehicle subject to disturbances , 2022, Ocean Engineering.
[5] Chenxin Lyu,et al. Review of hybrid aerial underwater vehicle: Cross-domain mobility and transitions control , 2022, Ocean Engineering.
[6] Chenxin Lyu,et al. Toward a gliding hybrid aerial underwater vehicle: Design, fabrication, and experiments , 2022, J. Field Robotics.
[7] P. Wilson,et al. Ship speed prediction based on machine learning for efficient shipping operation , 2022, Ocean Engineering.
[8] J. Lee,et al. Wave attenuation prediction of artificial coral reef using machine-learning integrated with hydraulic experiment , 2022, Ocean Engineering.
[9] Arun George,et al. Optimal design of vertical porous baffle in a swaying oscillating rectangular tank using a machine learning model , 2022, Ocean Engineering.
[10] Junlei Wang,et al. Prediction of wind-induced vibrations of twin circular cylinders based on machine learning , 2021, Ocean Engineering.
[11] K. Takamure,et al. Effect of Froude number on the motion of a spherical particle launched vertically upward in water , 2021 .
[12] Lu Di,et al. Design, fabrication, and characterization of a multimodal hybrid aerial underwater vehicle , 2020 .
[13] Lian Lian,et al. Adaptive Dynamic Surface Control for a Hybrid Aerial Underwater Vehicle With Parametric Dynamics and Uncertainties , 2020, IEEE Journal of Oceanic Engineering.
[14] Yuqing Chen,et al. System Modeling and Simulation of an Unmanned Aerial Underwater Vehicle , 2019 .
[15] Chen Fu,et al. Numerical analysis of water exit for a sphere with constant velocity using the lattice Boltzmann method , 2019, Applied Ocean Research.
[16] C. Clanet,et al. Jumping dynamics of aquatic animals , 2019, Journal of the Royal Society Interface.
[17] Osamah A. Rawashdeh,et al. Loon Copter: Implementation of a hybrid unmanned aquatic–aerial quadcopter with active buoyancy control , 2018, J. Field Robotics.
[18] Marco M. Maia,et al. Modeling and control of unmanned aerial/underwater vehicles using hybrid control , 2018, Control Engineering Practice.
[19] Jian Yang,et al. Research on vertical air–water trans-media control of Hybrid Unmanned Aerial Underwater Vehicles based on adaptive sliding mode dynamical surface control , 2018 .
[20] B. Ni,et al. Experimental study on large deformation of free surface during water exit of a sphere , 2017 .
[21] Mario Fernando Montenegro Campos,et al. Hybrid Unmanned Aerial Underwater Vehicle: Modeling and simulation , 2014, 2014 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[22] Gerard Hamill,et al. Determining propeller induced erosion alongside quay walls in harbours using Artificial Neural Networks , 2013 .
[23] Alain Nême,et al. Experimental study of coefficients during vertical water entry of axisymmetric rigid shapes at constant speeds , 2012 .
[24] A. C. Fairlie-Clarke,et al. An experimental investigation into the constant velocity water entry of wedge-shaped sections , 2008 .
[25] Geoffrey E. Hinton,et al. Learning representations by back-propagating errors , 1986, Nature.