Gyroscopic wave energy converter with a self-accelerating rotor in WEC-glider

被引:20
作者
Zhang, Yongkuang [1 ,2 ]
Wen, Yu [1 ,2 ]
Han, Xinyang [1 ,2 ]
Zhang, Weidong [3 ]
Gao, Feng [1 ,2 ]
Chen, Weixing [1 ,2 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Mech Engn, State Key Lab Mech Syst & Vibrat, Shanghai 200240, Peoples R China
[2] Shanghai Jiao Tong Univ, Inst Marine Equipment, Res Ctr Marine Intelligent Equipment & Robot, Shanghai, Peoples R China
[3] Shanghai Jiao Tong Univ, Dept Automat, Shanghai 200240, Peoples R China
关键词
WEC-Glider; Wave energy converter; Wave glider; Dynamics; Gyroscope; EXPERIMENTAL VALIDATION; ISWEC WAVE; DYNAMICS; EFFICIENCY; SYSTEM;
D O I
10.1016/j.oceaneng.2023.113819
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
The electric energy of wave gliders mainly comes from solar energy, which limits its application in cloudy conditions or at or at high latitudes. This paper presents a wave glider with a Gyroscopic Wave Energy Converter called the GyroWEC-Glider, which harnesses the pitch or roll motion of wave glider to generate electricity. The gyroscope's precession torque accelerates the rotor spin through the stimulation of the float's pitch motion, thanks to the gear constraints. The system's adaptability to random sea conditions is achieved through the use of a one-way bearing and torsion spring. Based on Fossen's equation and Euler's law, a dynamic model of the GyroWEC-Glider is established. Through simulation using MATLAB/Simulink, it was found that wave propulsion is minimally affected by wave power generation. The influence of the critical speed and torsional stiffness on power generation under irregular waves are investigated. Compared with the traditional wave glider, the GyroWEC-Glider is able to absorb 16.7% more wave energy, and provides an additional 24 W of electricity over the long-term average. It will be of great significance for expanding the application scenario of wave gliders.
引用
收藏
页数:12
相关论文
共 78 条
[31]   A Wave Glider Approach to Fisheries Acoustics Transforming How We Monitor the Nation's Commercial Fisheries in the 21st Century [J].
Greene, Charles H. ;
Meyer-Gutbrod, Erin L. ;
McGarry, Louise P. ;
Hufnagle, Lawrence C., Jr. ;
Chu, Dezhang ;
McClatchie, Sam ;
Packer, Asa ;
Jung, Jae-Byung ;
Acker, Timothy ;
Dorn, Huck ;
Pelkie, Chris .
OCEANOGRAPHY, 2014, 27 (04) :168-174
[32]   On the dynamics of the Dynabee [J].
Gulick, DW ;
O'Reilly, OM .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2000, 67 (02) :321-325
[33]  
Hasselmann K.F., 1973, DEUT HYDROGR Z, V8
[34]  
Hine R., 2009, OCEANS 2009, P1
[35]   Control design of a gyro-based wave energy converter for autonomous underwater vehicle [J].
Hou, Puyue ;
Liu, Li ;
Guo, Liming ;
Zhou, Yuying .
2019 INTERNATIONAL CONFERENCE ON ADVANCED ELECTRONIC MATERIALS, COMPUTERS AND MATERIALS ENGINEERING (AEMCME 2019), 2019, 563
[36]  
Kanki H., 2009, DEV ADV WAVE POWER G
[37]  
Kanki H., 2010, 20 INT OFFSHORE POLA
[38]   The inertial sea wave energy converter (ISWEC) technology: Device-physics, multiphase modeling and simulations [J].
Khedkar, Kaustubh ;
Nangia, Nishant ;
Thirumalaisamy, Ramakrishnan ;
Bhalla, Amneet Pal Singh .
OCEAN ENGINEERING, 2021, 229
[39]   Prototype testing of the wave energy converter wave dragon [J].
Kofoed, JP ;
Frigaard, P ;
Friis-Madsen, E ;
Sorensen, HC .
RENEWABLE ENERGY, 2006, 31 (02) :181-189
[40]  
Kraus N.D., 2012, Wave Glider Dynamic Modeling, Parameter Identification and Simulation