Multi-scale concurrent design of a 100 kW wave energy converter

被引:0
作者
Mi, Jia [1 ]
Huang, Jianuo [1 ]
Yang, Lisheng [1 ]
Ahmed, Alaa [2 ]
Li, Xiaofan [1 ]
Wu, Xian [1 ]
Datla, Raju [2 ]
Staby, Bill [3 ]
Hajj, Muhammad [2 ]
Zuo, Lei [1 ]
机构
[1] Univ Michigan, Dept Naval Architecture & Marine Engn, Ann Arbor, MI 48109 USA
[2] Stevens Inst Technol, Dept Civil Environm & Ocean Engn, Hoboken, NJ 07030 USA
[3] Resolute Marine Energy LLC, Boston, MA USA
关键词
Wave energy converter; Concurrent design; Multi-scale design; PacWave-south; Case study; PERFORMANCE; METHODOLOGY; TESTS; WATER;
D O I
10.1016/j.renene.2024.121835
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Wave energy converters (WEC) are complex systems comprising multiple subsystems including wave capture structure and station keeping, power takeoff (PTO), and control. Designing the whole WEC system requires an effective design approach that considers mutual couplings among them throughout the entire design process. Moreover, the traditional serial design approach, transitioning from small-scale to full-scale designs incrementally, often overlooks issues related to scaling factors. This can lead to unexpected challenges and delays towards real ocean deployment. To address system-level considerations and scaling challenges in WEC design, this study introduces a novel multi-scale concurrent design approach. It facilitates full-scale WEC design from the early concept to ocean test planning. This approach ensures a holistic and effective design process that considers interactions among subsystems at each design stage and incorporates control co-design starting with early concept development. To demonstrate the presented approach, we introduce a case study focused on the design of a 100 kW floating oscillating surge wave energy converter (FOSWEC) for PacWave South ocean test site. This includes the design of wave capture structure and station keeping, PTO, control, ocean test planning, and technoeconomic analysis. The case study showcases the effectiveness of the proposed approach, offering invaluable guidance and insights for future WEC development and support efficient, cost-effective collaboration in WEC design and testing.
引用
收藏
页数:23
相关论文
共 87 条
[1]   Developing a novel risk-based methodology for multi-criteria decision making in marine renewable energy applications [J].
Abaei, Mohammad Mandi ;
Arzaghi, Ehsan ;
Abbassi, Rouzbeh ;
Garaniya, Vikram ;
Penesis, Irene .
RENEWABLE ENERGY, 2017, 102 :341-348
[2]  
Ahmed A., 2023, Ocean. 2023-MTS/IEEE U.S. Gulf Coast, P1, DOI [10.23919/oceans52994.2023.10336952, DOI 10.23919/OCEANS52994.2023.10336952]
[3]   Power capture and power take-off load of a self-balanced dual-flap oscillating surge wave energy converter [J].
Ahmed, Alaa ;
Mi, Jia ;
Huang, Jianuo ;
Datla, Raju ;
Connington, Kevin ;
Zuo, Lei ;
Hajj, Muhammad R. .
ENERGY, 2024, 291
[4]   Performance characterization and modeling of an oscillating surge wave energy converter [J].
Ahmed, Alaa ;
Yang, Lisheng ;
Huang, Jianuo ;
Shalaby, Ahmed ;
Datla, Raju ;
Zuo, Lei ;
Hajj, Muhammad .
NONLINEAR DYNAMICS, 2024, 112 (06) :4879-4898
[5]  
[Anonymous], 2014, 1 INT C RENEWABLE EN, DOI DOI 10.1201/B18973-71
[6]   System Identification of OSWEC Response Using Physics-Informed Neural Network [J].
Ayyad, Mahmoud ;
Ahmed, Alaa ;
Yang, Lisheng ;
Hajj, Muhammad R. ;
Datla, Raju ;
Zuo, Lei .
OCEANS 2023 - LIMERICK, 2023,
[7]   A database of capture width ratio of wave energy converters [J].
Babarit, A. .
RENEWABLE ENERGY, 2015, 80 :610-628
[8]   Stakeholder requirements for commercially successful wave energy converter farms [J].
Babarit, Aurelien ;
Bull, Diana ;
Dykes, Katherine ;
Malins, Robert ;
Nielsen, Kim ;
Costello, Ronan ;
Roberts, Jesse ;
Ferreira, Claudio Bittencourt ;
Kennedy, Ben ;
Weber, Jochem .
RENEWABLE ENERGY, 2017, 113 :742-755
[9]  
Baca Elena., 2022, Expert elicitation for wave energy lcoe futures
[10]   Comments on Control of Wave Energy Converters [J].
Bacelli, Giorgio ;
Coe, Ryan G. .
IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2021, 29 (01) :478-481