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Current source converter based offshore wind farm: Configuration and control.

机译:基于电流源转换器的海上风电场:配置和控制。

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摘要

Recently, offshore wind farms have emerged as the most promising sector in the global renewable energy industry. The main reasons for the rapid development of offshore wind farms includes much better wind resources and smaller environmental impact (e.g., audible noise and visual effect). However, the current state of the offshore wind power presents economic challenges significantly greater than onshore. In this thesis, a novel interconnecting method for permanent magnet synchronous generator (PMSG)-based offshore wind farm is proposed, where cascaded pulse-width modulated (PWM) current-source converters (CSCs) are employed on both generator- and grid-side. With the converters in cascade to achieve high operating voltages, the proposed method eliminates the need for bulky and very costly offshore converter substation which is usually employed in voltage source converter (VSC) high voltage DC (HVDC)-based counterparts. Related research in terms of control schemes and grid integration are carried out to adapt the proposed cascaded CSC-based offshore wind farm configuration.;Considering inconsistent wind speed at each turbine, a coordinated control scheme is proposed for the cascaded CSC-based offshore wind farm. In proposed control strategy, the wind farm supervisory control (WFSC) is developed to generate the optimized dc-link current control. This enables all the turbines to independently track their own MPPT even with inconsistent wind speed at each turbine.;Grid integration issues, especially the fault ride-through (FRT) capability for the cascaded CSC-based offshore wind farm are addressed. Challenges in implementing existing FRT methods to the proposed offshore wind farm are identified. Based on this, a new FRT strategy using inherent short circuit operating capability of the CSC is developed. Moreover, the mitigation strategy is developed to ensure the continuous operation of the cascaded CSC-based offshore wind farm when one or more turbines fail to operate.;Simulation and experimental verification for various objectives are provided throughout the thesis. The results validate the proposed solutions for the main challenges of the cascaded current source converter based offshore wind farm.;The large distance between generator- and grid-side CSC in the proposed wind farm configuration addresses significant challenges for the system control. In order to overcome the problem, a novel decoupled control scheme is developed. The active and reactive power control on the grid-side converters are achieved without any exchange of information from the generator-side controller. Therefore, the long distance communication links between the generator- and grid-side converters are eliminated and both controllers are completely decoupled. At the same time, the maximum power tracking control is achieved for the generator-side converters that enable full utilization of the wind energy.
机译:近来,海上风电场已成为全球可再生能源行业中最有前途的行业。海上风电场快速发展的主要原因包括更好的风能资源和较小的环境影响(例如,可听见的噪音和视觉效果)。但是,目前海上风电的现状所带来的经济挑战远比陆上风电更大。本文提出了一种基于永磁同步发电机(PMSG)的海上风电场的互连新方法,该方法在发电机侧和电网侧均采用级联脉宽调制(PWM)电流源转换器(CSC) 。由于转换器级联以实现高工作电压,因此所提出的方法消除了通常用于基于电压源转换器(VSC)的高压直流(HVDC)的大型笨重且非常昂贵的海上变电站的需要。针对控制方案和电网集成进行了相关研究,以适应基于级联CSC的海上风电场的配置。考虑到每台风机的风速不一致,提出了基于级联CSC的海上风电场的协调控制方案。 。在提出的控制策略中,开发了风电场监督控制(WFSC)以生成优化的直流母线电流控制。这使所有涡轮机都可以独立跟踪自己的MPPT,即使每个涡轮机的风速不一致也是如此;并解决了电网集成问题,尤其是基于CSC的级联海上风电场的故障穿越(FRT)能力。确定了在拟议的海上风电场中实施现有FRT方法的挑战。基于此,开发了一种利用CSC固有的短路操作能力的新型FRT策略。此外,还开发了缓解策略,以确保当一台或多台涡轮机无法运行时,级联的基于CSC的海上风电场可以连续运行。本文提供了各种目标的仿真和实验验证。结果验证了针对基于级联电流源变流器的海上风电场的主要挑战所提出的解决方案。在拟议的风电场配置中,发电机侧和电网侧CSC之间的较大距离解决了系统控制方面的重大挑战。为了克服该问题,开发了一种新颖的解耦控制方案。无需在发电机侧控制器之间交换任何信息即可实现电网侧变流器的有功和无功控制。因此,消除了发电机侧和电网侧转换器之间的长距离通信链接,并且两个控制器都完全解耦。同时,发电机侧变流器实现了最大功率跟踪控制,从而可以充分利用风能。

著录项

  • 作者

    Nandlal Popat, Miteshkumar.;

  • 作者单位

    Ryerson University (Canada).;

  • 授予单位 Ryerson University (Canada).;
  • 学科 Engineering Electronics and Electrical.;Engineering Computer.;Alternative Energy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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