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Dynamic response and power performance of a combined Spar-type floating wind turbine and coaxial floating wave energy converter

机译:Spar型浮式风力发电机与同轴浮波能量转换器组合的动力响应和功率性能

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摘要

Wind turbines need to be spaced at a distance of the order of 1 km apart to reduce the effect of aerodynamic wakes. To increase the density of the power production in the farm, the deployment of wave energy converters (WECs) in the spaces between FWTs could be considered. However, the cost of energy from WECs is still very large. Therefore, the deployments of the WECs will reduce the economic value of the total project. In the present paper, a combined concept involving a combination of Spar-type FWTs and an axi-symmetric two-body WECs is considered. Compared with segregated deployments of FWTs and WECs, this combined concept would imply reduced capital costs of the total project because it will reduce the number of power cables, mooring line and the structural mass of the WECs. However, the effect of the addition of a Torus (donut-shape heaving buoy) on the FWTs motions as well as the power production should first be investigated. In the present study, coupled (wave- and wind-induced response-mooring) analysis is performed using SIM0/TDHMILL3D in the time domain to study the motion behaviour of the combined concept and to estimate the power production from both FWT and WEC under operational conditions. Mooring tension in the combined concept is also compared with the mooring tension in the Spar-type FWT alone. Hydrodynamic loads are determined using HydroD. The validated simplified method called TDHMILL is implemented to calculate the aerodynamic forces as a function of the relative wind velocity. The analysis is performed for several operational conditions according to metocean data taken in the Statfjord field in the North Sea. Finally, the behaviour of the combined concept under operational conditions is assessed, and it is shown to result in a positive synergy between wind and wave energy generation in terms of both capital investment and power production.
机译:风力涡轮机需要以大约1 km的距离间隔开,以减少空气动力学尾流的影响。为了增加农场中发电的密度,可以考虑在FWT之间的空间中部署波浪能转换器(WEC)。但是,WEC的能源成本仍然很高。因此,WEC的部署将降低整个项目的经济价值。在本文中,考虑了包括Spar型FWT和轴对称两体WEC的组合的组合概念。与FWT和WEC的分开部署相比,此组合概念将减少整个项目的资本成本,因为它将减少电力电缆,系泊缆的数量和WEC的结构质量。但是,应该首先研究增加圆环(圆环形状的浮标)对FWT运动和动力产生的影响。在本研究中,在时域中使用SIM0 / TDHMILL3D进行了耦合(波浪和风引起的响应系泊)分析,以研究组合概念的运动行为,并估算在运行状态下FWT和WEC的发电量条件。也将组合概念中的系泊张力与仅Spar型FWT的系泊张力进行了比较。使用HydroD确定流体动力载荷。已实施经过验证的简化方法TDHMILL,以根据相对风速计算空气动力。根据在北海Statfjord油田获得的气象数据对几种运行条件进行了分析。最后,对组合概念在运行条件下的行为进行了评估,结果表明,在资本投资和发电方面,风能和波浪能的产生具有积极的协同作用。

著录项

  • 来源
    《Renewable energy》 |2013年第2期|47-57|共11页
  • 作者单位

    Centre for Ship and Ocean Structures (CeSOS). Norwegian University of Science and Technology. Otto Nielsens vei 10, NO-7491 Trondheim, Norway;

    Centre for Ship and Ocean Structures (CeSOS). Norwegian University of Science and Technology. Otto Nielsens vei 10, NO-7491 Trondheim, Norway,Norwegian Research Centre for Offshore Wind Technology (Nowitech), Norwegian University of Science and Technology, Otto Nielsens vei 10, NO-7491, Trondheim, Norway;

    Centre for Ship and Ocean Structures (CeSOS). Norwegian University of Science and Technology. Otto Nielsens vei 10, NO-7491 Trondheim, Norway,Norwegian Research Centre for Offshore Wind Technology (Nowitech), Norwegian University of Science and Technology, Otto Nielsens vei 10, NO-7491, Trondheim, Norway;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    combined wind and wave powers; floating wind turbine; wave energy converter; dynamic response; power performance;

    机译:风电和海浪的综合力量;浮动式风力发电机波能转换器动态响应动力表现;
  • 入库时间 2022-08-18 00:26:08

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