Mixed time-frequency-domain method for nonlinear hybrid floating breakwater-WEC

被引:1
作者
Li, Pengcheng [1 ]
Zhang, Haiheng [1 ,2 ,3 ]
Zhao, Xin [1 ,4 ]
Jin, Huaqing [1 ]
Ding, Jun [4 ]
Xu, Daolin [1 ,5 ]
机构
[1] Hunan Univ, Coll Mech & Vehicle Engn, Changsha 410082, Peoples R China
[2] Hunan Univ, Greater Bay Area Inst Innovat, Guangzhou 511300, Peoples R China
[3] Hunan Univ, Wuxi Intelligent Control Res Inst, Wuxi 214082, Peoples R China
[4] China Ship Sci Res Ctr, Wuxi 214082, Peoples R China
[5] Taihu Lab Deepsea Technol Sci, Wuxi 214082, Peoples R China
基金
中国国家自然科学基金;
关键词
Wave energy; Wave attenuation; Bistable; Nonlinear dynamics; Wave-structure interaction; Low frequency; WAVE ENERGY CONVERTER; HYDRODYNAMIC PERFORMANCE; VIBRATION; POWER; ENHANCEMENT; DIFFRACTION; EFFICIENCY; RADIATION;
D O I
10.1016/j.ymssp.2025.112426
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Ocean waves represent a vast and renewable resource that is prevalent across the globe. However, the relentless erosion of marine equipment and coastal structures poses an ongoing challenge to safety. The integration of a floating breakwater with a wave energy converter (FB-WEC) offers a dual solution that addresses both wave protection and energy harnessing. The attenuation of lowfrequency ocean waves and their subsequent energy capture is a critical issue within the field of ocean engineering. The introduction of additional nonlinear stiffness can significantly enhance the low-frequency response of FB-WECs without the need to enlarge their physical dimensions. To address the complex nonlinear fluid-structure interactions inherent in nonlinear FB-WECs, a hybrid time-frequency domain approach has been developed. This method is based on the concept of harmonic decomposition and enables the rapid computation of the FB-WEC's motion response while facilitating the concurrent acquisition of wave data. An innovative umbrella-type bistable mechanism (U-BM) has been conceived and implemented in the FB-WEC design. A prototype has been fabricated, and its performance was tested through wave flume experiments. The results of these experiments have validated the numerical simulations, confirming that the UBM FB-WEC is proficient at responding to low-amplitude wave excitations. Under conditions of comparable wave height, the U-BM FB-WEC consistently delivers over 50% more power output in the low-frequency band compared to its linear counterpart. This advancement marks a significant stride in the field of wave energy conversion, promising more efficient energy capture and a more sustainable future for marine environments and coastal communities.
引用
收藏
页数:23
相关论文
共 78 条
  • [1] Wang X., Xia H., Guo Y., Duan Y., Wang M., Liu Y., Si H., Research on field testing and assessment technology of ocean energy converters, Ocean Eng., 285, (2023)
  • [2] Decastro M., Rusu L., Arguile-Perez B., Ribeiro A., Costoya X., Carvalho D., Gomez-Gesteira M., Different approaches to analyze the impact of future climate change on the exploitation of wave energy, Ssrn., 220, (2023)
  • [3] Mwasilu F., Jung J.W., Potential for power generation from ocean wave renewable energy source: A comprehensive review on state-of-the-art technology and future prospects, IET Renew. Power Gener., 13, pp. 363-375, (2019)
  • [4] Drew B., Plummer A.R., Sahinkaya M.N., A review of wave energy converter technology, Proc. Inst. Mech. Eng. Part A J. Power Energy., 223, pp. 887-902, (2009)
  • [5] Foteinis S., Hancock J., Mazarakis N., Tsoutsos T., Synolakis C.E., A comparative analysis of wave power in the nearshore by WAM estimates and in-situ (AWAC) measurements, The Case Study of Varkiza, Athens, Greece, Energy., 138, pp. 500-508, (2017)
  • [6] Amini E., Nasiri M., Pargoo N.S., Mozhgani Z., Golbaz D., Baniesmaeil M., Nezhad M.M., Neshat M., Astiaso Garcia D., Sylaios G., Design optimization of ocean renewable energy converter using a combined Bi-level metaheuristic approach, Energy Convers. Manag. x., 19, (2023)
  • [7] Zhang H., Zhou X., Xu D., Zou W., Ding J., Xia S., Nonlinear stiffness mechanism for high-efficiency and broadband raft-type wave energy converters, Mech. Syst. Signal Process., 177, (2022)
  • [8] Zhang Z., Yu Q., Yang H., Li J., Cheng J., Gao S., Triple-layered chaotic differential evolution algorithm for layout optimization of offshore wave energy converters, Expert Syst. Appl., 239, (2024)
  • [9] Evans D.V., A theory for wave-power absorption by oscillating bodies, J. Fluid Mech., 77, pp. 1-25, (1976)
  • [10] McCartney B.L., Floating breakwater design, J. Waterw. Port, Coastal, Ocean Eng., 111, pp. 304-318, (1985)