基于振荡水柱的新型六层浮式海上风力轮平台的设计和稳定性分析
Salvador Cayuela-Padilla1, Fares M'zoughi2, Izaskun Garrido2
1Automatic Control Group-ACG, Institute of Research and Development of Processes-IIDP, Department of Automatic Control and Systems Engineering, Faculty of Engineering of Bilbao, University of the Basque Country-UPV/EHU, Po Rafael Moreno no3, 48013, Bilbao, Spain. salvador.cayuela@ehu.eus.
Scientific reports
|July 13, 2024
概括
振荡水柱 (OWC) 可以通过减少平台俯仰和曲折运动来稳定漂浮的海上风力轮机. 这项技术通过减轻风和波压负荷带来的振动来提高运行效率和轮机寿命.
科学领域:
- 海洋工程 海洋工程
- 可再生能源系统可再生能源系统
- 海军建筑 海军建筑
背景情况:
- 浮动海上风力轮机 (FOWTs) 由于平台运动和振动而面临运营效率和寿命方面的挑战.
- 平台斜率和曲率是关键的自由度 (DOF),需要控制以减轻风和波负荷的不利影响.
研究的目的:
- 调查振荡水柱 (OWC) 在减轻FOWT的斜率和曲率运动方面的有效性.
- 评估将OWC集成到六层平台中的影响,并确定运动稳定最佳配置.
主要方法:
- 响应幅度运算符 (RAO) 对于斜率和曲率运动的分析.
- 在六层平台上模拟不同的OWC集成组合.
- 经验评估OWC在各种波频的阻尼效应.
主要成果:
- 特定的OWC配置显示,可以显著地减轻斜率和曲率的运动.
- 稳定效应在某些波频间隔内特别明显.
- 整合OWC导致了多浮体平台稳定性的显著改善.
结论:
- OWC为增强FOWT稳定性和减少疲劳提供了可行的解决方案.
- 战略性的OWC集成可以大大提高漂浮海上风能系统的性能和寿命.
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