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Increasing power generation in horizontal axis wind turbines using optimized flow control.

机译:使用优化的流量控制来提高水平轴风力发电机的发电量。

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摘要

In order to effectively realize future goals for wind energy, the efficiency of wind turbines must increase beyond existing technology. One direct method for achieving increased efficiency is by improving the individual power generation characteristics of horizontal axis wind turbines. The potential for additional improvement by traditional approaches is diminishing rapidly however. As a result, a research program was undertaken to assess the potential of using distributed flow control to increase power generation. The overall objective was the development of validated aerodynamic simulations and flow control approaches to improve wind turbine power generation characteristics. BEM analysis was conducted for a general set of wind turbine models encompassing last, current, and next generation designs. This analysis indicated that rotor lift control applied in Region II of the turbine power curve would produce a notable increase in annual power generated. This was achieved by optimizing induction factors along the rotor blade for maximum power generation.;In order to demonstrate this approach and other advanced concepts, the University of Notre Dame established the Laboratory for Enhanced Wind Energy Design (eWiND). This initiative includes a fully instrumented meteorological tower and two pitch-controlled wind turbines. The wind turbines are representative in their design and operation to larger multi-megawatt turbines, but of a scale that allows rotors to be easily instrumented and replaced to explore new design concepts. Baseline data detailing typical site conditions and turbine operation is presented.;To realize optimized performance, lift control systems were designed and evaluated in CFD simulations coupled with shape optimization tools. These were integrated into a systematic design methodology involving BEM simulations, CFD simulations and shape optimization, and selected experimental validation. To refine and illustrate the proposed design methodology, a complete design cycle was performed for the turbine model incorporated in the wind energy lab. Enhanced power generation was obtained through passive trailing edge shaping aimed at reaching lift and lift-to-drag goals predicted to optimize performance. These targets were determined by BEM analysis to improve power generation characteristics and annual energy production (AEP) for the wind turbine. A preliminary design was validated in wind tunnel experiments on a 2D rotor section in preparation for testing in the full atmospheric environment of the eWiND Laboratory. These tests were performed for the full-scale geometry and atmospheric conditions. Upon making additional improvements to the shape optimization tools, a series of trailing edge additions were designed to optimize power generation. The trailing edge additions were predicted to increase the AEP by up to 4.2% at the White Field site. The pieces were rapid-prototyped and installed on the wind turbine in March, 2014. Field tests are ongoing.
机译:为了有效地实现未来的风能目标,风力涡轮机的效率必须提高到现有技术之外。一种提高效率的直接方法是改善水平轴风力涡轮机的各个发电特性。但是,传统方法带来的进一步改进的潜力正在迅速减少。结果,进行了一项研究计划,以评估使用分布式流量控制来增加发电量的潜力。总体目标是开发经过验证的空气动力学模拟和流量控制方法,以改善风力发电机的发电特性。针对包括上一代,当前和下一代设计在内的通用风力涡轮机模型集进行了BEM分析。该分析表明,在涡轮功率曲线的II区中应用的转子升程控制将使年发电量显着增加。这是通过优化沿转子叶片的感应系数以实现最大发电量来实现的。为了演示此方法和其他高级概念,圣母大学成立了增强型风能设计实验室(eWiND)。该计划包括一个设备齐全的气象塔和两个变桨控制的风力涡轮机。风力涡轮机在设计和运行方面具有较大的兆瓦级涡轮机的代表性,但其规模可轻松安装和更换转子,以探索新的设计理念。提供了详细的典型现场条件和涡轮机运行情况的基线数据。为了实现最佳性能,在CFD仿真中结合形状优化工具设计和评估了升程控制系统。这些已集成到系统设计方法中,包括BEM模拟,CFD模拟和形状优化以及选定的实验验证。为了完善和说明所提出的设计方法,对包含在风能实验室中的涡轮机模型执行了完整的设计周期。通过被动后缘整形获得了增强的发电效果,该被动后缘整形旨在达到预计可优化性能的提升和提升至拖动目标。通过BEM分析确定了这些目标,以改善风力发电机的发电特性和年发电量(AEP)。初步设计已在2D转子截面的风洞实验中得到验证,以准备在eWiND实验室的整个大气环境中进行测试。这些测试是针对全尺寸几何形状和大气条件进行的。在对形状优化工具进行了其他改进之后,设计了一系列后沿附加功能以优化发电。预计在白场站点添加后缘会提高AEP达4.2%。这些零件已快速成型,并于2014年3月安装在风力涡轮机上。正在进行现场测试。

著录项

  • 作者

    Cooney, John A., Jr.;

  • 作者单位

    University of Notre Dame.;

  • 授予单位 University of Notre Dame.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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