带有振荡水柱波能转换器的浮动式混合风能-波能系统建模:减少漂浮物运动的研究

H. Zhu, C. Hu, S. Yoshida
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引用次数: 0

摘要

浮式海上风力涡轮机与波浪能转换器的整合被视为海上可再生能源开发的一种前景广阔的解决方案。考虑到波浪能转换技术的早期阶段以及控制方法对整个系统动力学的重大影响,一个忠实的气动-水动-热弹性-伺服-摩擦耦合模型以及一个为控制实施提供高度灵活性的工程环境至关重要。为了满足这一要求,本研究基于 Simulink 和 OpenFAST 开发了一个数值建模框架,Simulink 以其在控制设计和实施方面的优势而著称,而 OpenFAST 则提供了一个可靠的浮动风力涡轮机模型。该模型结合了腔室中空气的热力学、动力输出动力学和振荡水柱动力学。此外,波浪能转换器采用旁通阀来调节腔室压力和减少浮筒运动,并提出了调节阀开度的控制法则。为验证模型,在恶劣的海洋条件下进行了案例研究。数值结果不仅证明了模型的可行性,还强调了控制法则在改善浮筒运动性能方面的有效性。
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Modelling of a Floating-Type Hybrid Wind-Wave System with Oscillating Water Column Wave Energy Converters: A Study Towards Floater Motion Reduction
The integration of floating offshore wind turbines with wave energy converters is regarded as a promising solution for offshore renewable energy development. Given the early stage of wave energy conversion technologies and the substantial influence of control methods on overall system dynamics, a faithful aero-hydro-thermo-elastic-servo-mooring coupled model, along with an engineering environment offering high flexibility for control implementations, is essential. To address the requirement, a numerical modeling framework is developed in this study based on Simulink, known for its superiority in control design and implementation, and OpenFAST, which offers a reliable floating wind turbine model. The model incorporates the thermodynamics of the air in chambers, power take-off dynamics, and oscillating water column dynamics. Furthermore, bypass valves are utilized for the wave energy converters to adjust chamber pressure and reduce floater motion, with a control law proposed to regulate the valve opening ratio. A case study is conducted under harsh ocean conditions to validate the model. The numerical results not only demonstrate the feasibility of the model but also underscore the effectiveness of the control law in improving floater motion performance.
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