Recent Progress on Built-in Wave Energy Converters: A Review
Abstract
:1. Introduction
2. Wave Energy Capture
Oscillating Water Column Type [29] | Oscillating Body Type (Two Bodies/Multiple Bodies) [30] | Oscillating Body Type (Single Body, Pull-Out Mooring Required) [31] | Oscillating Body Type (Single Body, Fully Encapsulated) [32] |
---|---|---|---|
1. It is necessary to connect the air chamber, water compartment, and seawater successively; 2. Openings are required both above the waterline and below the waterline. | 1. Two or more floating bodies are required; 2. Transmission/connecting structures partially contact seawater directly. | 1. It is required to connect to an anchoring (fixed) point; 2. Transmission/connecting structures partially contact seawater directly. | 1. Completely integrated into its carrier as an internal module; 2. Transmission/connecting structure does not contact seawater directly. |
3. The Power Take-Off (PTO)
4. Controls
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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---|---|---|---|---|---|
ISWEC | Boat-shaped | By WEC | Pitch | Full-Scale Sea Trial | [19] |
Penguin | Boat-shaped | By WEC | Roll and Pitch | Full-scale Sea Trial | [20] |
Soochow University | Observation Buoy | By Carrier | Roll and Pitch | Small-Scale Sea Trial | [35] |
Zhejiang University | Unmanned Surface Vehicle | By Carrier | Roll and Pitch | Small-Scale Sea Trial | [28] |
GyroPTO | Spherical | By WEC | Roll and Pitch | Wave Basin Test | [38] |
WITT | Spherical | By WEC | Pitch | Wave Basin Test | [39] |
SEAREV | Mushroom-Like Buoy | By WEC | Pitch | Wave Basin Test | [40] |
Harbin Engineering University | Observation Buoy | By Carrier | Heave | Land Test | [46] |
PS Frog Mk 5 | Large Paddle with a Ballast Handle | By WEC | Pitch | Design and Simulation | [41] |
SR-WEC | Horizontal Cylinder | By WEC | Pitch | Design and Simulation | [43] |
E-Motions | Horizontal Semi-Cylinder | By WEC | Pitch | Design and Simulation | [49] |
Qingdao University of Science and Technology | Merchant Vessel | By Carrier | Mainly Roll | Design and Simulation | [47] |
University of Southampton | AUV | By Carrier | Pitch | Design and Simulation | [48] |
GWEC | AUV | By Carrier | Pitch | Design and Simulation | [17] |
Name/Developer | PTO Mode | Generator Type | Output | Reference |
---|---|---|---|---|
Khalifa University of Science and Technology | Translational sliding | Electromagnetic and Piezoelectric Linear Motor | 900 W | [52] |
Hong Kong Polytechnic University | Translational sliding | Electromagnetic Linear Motor | 1 W | [54] |
University of Texas Rio Grande Valley | Translational sliding | Electromagnetic Linear and Rotary Motor | 730 W | [55] |
Ferdowsi University of Mashhad | Translational sliding | Electromagnetic Linear Motor | 111.94 W | [56] |
PeWEC | Vertical rotation | Electromagnetic Rotary Motor | 41 W | [59] |
IPWEC | Vertical rotation | Electromagnetic Rotary Motor | 128 W | [61] |
T-EMG | Vertical rotation | Electromagnetic Linear Motor | 120 mW | [62] |
University of Exeter | Vertical rotation | Electromagnetic Rotary Motor | 0.72 W | [64] |
University of Exeter | Vertical rotation | Electromagnetic Rotary Motor | 0.997 W | [65] |
ISWEC | Horizontal rotation | Electromagnetic Rotary Motor | 5.96 W | [22] |
Zhejiang University | Horizontal rotation | Electromagnetic Rotary Motor | 1.3 W | [66] |
P-WEC | Horizontal rotation | Electromagnetic Rotary Motor | 520 mW | [67] |
Shanghai Jiao Tong University | Horizontal rotation | Electromagnetic Rotary Motor | 54 W | [68] |
RF-TENG | Horizontal rotation | Triboelectric Linear Motor | 10 mW | [70] |
Beijing Institute of Nanoenergy and Nanosystems | Horizontally rolling | Triboelectric Linear Motor | 3.14 mW | [72] |
MT-TENG | Horizontally rolling | Triboelectric Linear Motor | 2.7 mW | [77] |
SR-TENG | Horizontally rolling | Triboelectric Linear Motor | 73.4 mW | [78] |
PEHEH | Horizontally rolling | Electromagnetic and PiezoelectricLinear Motor | 32.58 mW | [80] |
A-EMG | Horizontally rolling | Electromagnetic Linear Motor | 80.87 mW | [81] |
WEC Type | Control Strategy | Remarks | Reference |
---|---|---|---|
CETO | MPPT damping control MPC | Up to an additional 0.1 GW h per unit is extracted annually. | [87] |
A longer prediction horizon results in a more aggressive MPC design. | [91] | ||
South China University of Technology | MPPT | The optimal load for achieving maximum output power is found. | [88] |
ISWEC | MPC | The result is greater electricity generation under almost all conditions. | [89] |
Multi-agent systems | The optimal control parameters are found. | [97] | |
Reactive power control | There is strict control of the gyroscope’s rotation speed. | [19] | |
IPWEC | Complex conjugate | The required average reactive power under capacitive control is 75% less than that under NPWEC. | [92] |
Genetic algorithms | The optimal control parameters are found. | [92] | |
Michigan Technological University | Multi-resonant control | One of its advantages is that it eliminates the need for wave prediction. | [96] |
DR-WEC | Optimization algorithms (GPS) | The optimal control parameters are found. | [40] |
PeWEC | Genetic algorithms | The optimal control parameters are found. | [98] |
SEAREV | Torque and reactive power | The average power loss in grid connections is reduced. | [99] |
LOD control | The approach for using the LOD control has been proven to be the current best solution. | [110] | |
LS-WEC | Adjusting mass or spring stiffness | Tuning is carried out to improve wave energy conversion efficiency. | [100,101,102,103,104,105,106] |
DMSD and others | Adjusting mass and spring stiffness | Better optimization results are achieved. | [50] |
GyroWEC | PID | The is the active control of the rotor’s angular velocity. | [68] |
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Wang, H.; Sun, J.; Xi, Z.; Dai, S.; Xing, F.; Xu, M. Recent Progress on Built-in Wave Energy Converters: A Review. J. Mar. Sci. Eng. 2024, 12, 1176. https://doi.org/10.3390/jmse12071176
Wang H, Sun J, Xi Z, Dai S, Xing F, Xu M. Recent Progress on Built-in Wave Energy Converters: A Review. Journal of Marine Science and Engineering. 2024; 12(7):1176. https://doi.org/10.3390/jmse12071176
Chicago/Turabian StyleWang, Hao, Jiajing Sun, Ziyue Xi, Shu Dai, Fuzhen Xing, and Minyi Xu. 2024. "Recent Progress on Built-in Wave Energy Converters: A Review" Journal of Marine Science and Engineering 12, no. 7: 1176. https://doi.org/10.3390/jmse12071176
APA StyleWang, H., Sun, J., Xi, Z., Dai, S., Xing, F., & Xu, M. (2024). Recent Progress on Built-in Wave Energy Converters: A Review. Journal of Marine Science and Engineering, 12(7), 1176. https://doi.org/10.3390/jmse12071176