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Numerical investigation of adaptive damping control for raft-type wave energy converters

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  • Ni, Wenchi
  • Zhang, Xu
  • Zhang, Wei
  • Liang, Shuangling

Abstract

This paper aims to study the hydrodynamic characteristics and power generation capacity of raft-type WEC (Wave Energy Converter), and to investigate the feasibility of adaptive damping control for this kind of WEC. The numerical model of Pelamis WEC is built in software ANSYS-AQWA. By calling external force and power routines at each time step to calculate the torque and power generated by the generation system and back to the software, the time domain numerical simulation of Pelamis WEC's hydrodynamic response and power generation capacity is realized. Then the numerical simulation of adaptive damping is realized by defining the damping as a function of wave parameters, where the wave parameters are required to be forecasted and is computed in MathWorks Simulink based on the auto regression and Fourier transform methods. Then the hydrodynamic response and power generation performance of the Pelamis WEC under different stiffness and damping (constant) and adaptive damping conditions are calculated. Results show that the power generation capacity of the Pelamis WEC can be promoted by more than 15.9% with the adaptive damping control strategy based on the wave parameters. However, it is still limited to some factors, especially the wave forecasting method.

Suggested Citation

  • Ni, Wenchi & Zhang, Xu & Zhang, Wei & Liang, Shuangling, 2021. "Numerical investigation of adaptive damping control for raft-type wave energy converters," Renewable Energy, Elsevier, vol. 175(C), pages 520-531.
  • Handle: RePEc:eee:renene:v:175:y:2021:i:c:p:520-531
    DOI: 10.1016/j.renene.2021.04.128
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    References listed on IDEAS

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    1. Yang, Shaohui & He, Hongzhou & Chen, Hu & Wang, Yongqing & Li, Hui & Zheng, Songgen, 2019. "Experimental study on the performance of a floating array-point-raft wave energy converter under random wave conditions," Renewable Energy, Elsevier, vol. 139(C), pages 538-550.
    2. Yu, Hui-Feng & Zhang, Yong-Liang & Zheng, Si-Ming, 2016. "Numerical study on the performance of a wave energy converter with three hinged bodies," Renewable Energy, Elsevier, vol. 99(C), pages 1276-1286.
    3. Son, Daewoong & Yeung, Ronald W., 2017. "Optimizing ocean-wave energy extraction of a dual coaxial-cylinder WEC using nonlinear model predictive control," Applied Energy, Elsevier, vol. 187(C), pages 746-757.
    4. Henderson, Ross, 2006. "Design, simulation, and testing of a novel hydraulic power take-off system for the Pelamis wave energy converter," Renewable Energy, Elsevier, vol. 31(2), pages 271-283.
    5. Gaspar, José F. & Calvário, Miguel & Kamarlouei, Mojtaba & Guedes Soares, C., 2016. "Power take-off concept for wave energy converters based on oil-hydraulic transformer units," Renewable Energy, Elsevier, vol. 86(C), pages 1232-1246.
    6. Wu, Jinming & Yao, Yingxue & Zhou, Liang & Göteman, Malin, 2018. "Real-time latching control strategies for the solo Duck wave energy converter in irregular waves," Applied Energy, Elsevier, vol. 222(C), pages 717-728.
    7. Gaspar, José F. & Kamarlouei, Mojtaba & Sinha, Ashank & Xu, Haitong & Calvário, Miguel & Faÿ, François-Xavier & Robles, Eider & Soares, C. Guedes, 2016. "Speed control of oil-hydraulic power take-off system for oscillating body type wave energy converters," Renewable Energy, Elsevier, vol. 97(C), pages 769-783.
    8. Li, Guang & Belmont, Mike R., 2014. "Model predictive control of sea wave energy converters – Part II: The case of an array of devices," Renewable Energy, Elsevier, vol. 68(C), pages 540-549.
    9. Nguyen, Hoai-Nam & Tona, Paolino, 2020. "An efficiency-aware continuous adaptive proportional-integral velocity-feedback control for wave energy converters," Renewable Energy, Elsevier, vol. 146(C), pages 1596-1608.
    10. Li, Guang & Belmont, Michael R., 2014. "Model predictive control of sea wave energy converters – Part I: A convex approach for the case of a single device," Renewable Energy, Elsevier, vol. 69(C), pages 453-463.
    11. Gunn, Kester & Stock-Williams, Clym, 2012. "Quantifying the global wave power resource," Renewable Energy, Elsevier, vol. 44(C), pages 296-304.
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