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Wind turbine - atmospheric boundary layer interactions: model experiments and implications on numerical simulations

Wind turbine - atmospheric boundary layer interactions: model experiments and implications on numerical simulations
风力涡轮机-大气边界层相互作用:模型实验及其对数值模拟的影响
批准号:
0730574
负责人:
Luciano Castillo
金额:
$5.4万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-09-15 至 2010-08-31

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中文摘要
翻译
直径约100米的水平轴风力涡轮机是迄今为止建造的最大的旋转机器。与大多数涡轮机器不同,它们的正常运行条件受到自然变化的强烈影响。当风力涡轮机作为大型阵列部署在风力发电场时,它们之间以及与大气湍流边界层相互作用。为了优化它们的选址和几何布局,以及量化风电场在不同尺度上对陆地-大气交换的总体影响,大气输送过程的计算机建模需要尽可能真实地参数化风力涡轮机。智力优势:拟议的研究是风力涡轮机阵列中流动和能量学的风洞实验研究,以及专门用于解决计算机建模和参数化问题的多尺度数据分析。人们对风力涡轮机叶片空气动力学已经了解很多,但对风力涡轮机与湍流、高度可变环境相互作用的建模知识还远远不够发达。与之前的工作相比,拟议的研究将使用新一代流体动力学仪器以更高的分辨率解决这一差距,并结合新的数据分析技术。立体粒子成像测速技术将用于测量中性分层条件下风力发电机组阵列风洞模型的高分辨率速度图。这些数据将用于解决以下问题:(i)模型参数(如阻力或功率系数,有效粗糙度高度等),包括它们对流体和阵列几何形状特性的依赖。连贯周期结构在螺旋尾迹中的作用,特别强调它们对应力的影响。借鉴多级涡轮机械的概念,这些数据将用于测量“确定性应力”。这些压力的相对重要性将被量化,并提出可能的模型。(iii)将通过相似方法检查平均速度和应力剖面的标度行为。(四)将利用在大涡模拟和亚电网尺度建模方面新开发的分析工具,研究跨尺度的能量通量。结果将浓缩成有用的参数化和模式,可用于大气中风力涡轮机阵列的微观、中观和全球尺度模拟。更广泛的影响:拟议的研究将有助于提高从大气环境中提取风能的适用性、效率和对长期可持续性的理解。就更广泛的智力影响而言,提出的关于大型人造机械、连贯流动结构和随机湍流背景之间相互作用的研究可能会导致新的“空间尺度-时间”建模概念和分析工具。在外联方面,将与现有的nsf资助的研究生教育和教授联盟(AGEP)计划协同发展。目前在纽约中部-波多黎各(ny - pr)研究生教育联盟和RPI教授的参与重点是招募和指导少数民族学生的学术生涯。计划在波多黎各加瓜斯再建一个中心——“国际能源与可持续发展中心”。拟议的研究将使JHU、RPI、这个计划中的中心以及AGEP合作伙伴图拉博大学和波多黎各-马亚圭斯大学之间产生有益的协同作用。该项目还计划招收波多黎各本科生参加暑期实习,并为能源和可持续发展领域的学术生涯提供博士后学者指导。
英文摘要
With diameters on the order of 100 meters, horizontal axis wind-turbines are the largest rotating machines ever built. Unlike most turbomachines, their normal operating conditions are strongly influenced by natural variability. When deployed as large arrays in wind farms, wind turbines interact among themselves and with the atmospheric turbulent boundary layer. To optimize their siting and geometric arrangements, as well as to quantify the aggregate effects of wind-farms on the land-atmosphere exchanges at various scales, computer modeling of the atmospheric transport processes requires parameterizing the wind turbines as realistically as possible. Intellectual Merit: The proposed research is a wind-tunnel experimental study of flow and energetics in wind-turbine arrays, and multi-scale analysis of data motivated specifically to address computer modeling and parameterization issues. Much is already known about wind-turbine blade aerodynamics, but the knowledge on modeling the interactions of wind-turbines with the turbulent, highly variable environment is far less developed. The proposed research will address this gap using new-generation fluid dynamics instrumentation at a much increased resolution compared to prior work, coupled with new data analysis techniques. Stereo Particle-Image-Velocimetry will be used to measure high-resolution velocity maps in wind-tunnel models of wind-turbine arrays under neutral stratification. The data will be used address the following issues: (i) Model parameters (such as drag or power coefficients, effective roughness height, etc..), including their dependence on properties of the flow and array geometry. (ii) The role of coherent periodic structures in helical wakes, with specific emphasis on their impact on stresses. Borrowing from concepts developed for multi-stage turbomachinery, the data will be used to measure the "deterministic stresses". The relative importance of such stresses will be quantified and possible models proposed. (iii) The scaling behavior of mean velocity and stress profiles will be examined via a similarity approach. (iv) Energy fluxes across scales will be examined, using analysis tools newly developed in the context of Large Eddy Simulation and subgrid-scale modeling. Results will be condensed into useful parameterizations and models that may be used in micro, meso, and global scale simulations of wind-turbine arrays in the atmosphere. Broader impacts: The proposed research will contribute to advance the applicability, efficiency, and understanding of the long-term sustainability of wind energy extraction from the atmospheric environment. In terms of intellectual broader impacts, the proposed research on the interactions among large human-made machinery, coherent flow structures, and a random turbulent background may lead to new 'space-scale-time' modeling concepts and analysis tools. In terms of outreach, synergies with an existing NSF-funded Alliance for Graduate Education and Professoriate (AGEP) program will be developed. Current involvement in the Central New York-Puerto Rico (CNY-PR) Alliance for Graduate Education and the Professoriate at RPI focuses on recruiting and mentoring minority students for academic careers. An additional center is planned for Caguas, Puerto Rico - "The International Center on Energy and Sustainability". The proposed research will enable useful synergies between JHU, RPI, this planned Center, and AGEP partners University of Turabo and University of Puerto Rico-Mayaguez. Recruitment of undergraduate students from Puerto Rico to work during summer internships on this project is also planned, as well as mentorship of postdoctoral scholars for academic careers in the field of energy and sustainability.
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会议论文
COLLABORATIVE RESEARCH: Dynamics of Inertial Particles in Thermally-Stratified Flows within Electromagnetic Field
  • 批准号:
    1948748
  • 项目类别:
    Standard Grant
  • 资助金额:
    $3.7万
  • 财政年份:
    2019
  • 负责人:
    Luciano Castillo
  • 依托单位:
I-Corps: On-the-Go Urinalysis Optical Lab
  • 批准号:
    1624052
  • 项目类别:
    Standard Grant
  • 资助金额:
    $5.0万
  • 财政年份:
    2016
  • 负责人:
    Luciano Castillo
  • 依托单位:
Whither Turbulence and Big Data in the 21st Century? (Corsica, April 20-24, 2015)
  • 批准号:
    1515696
  • 项目类别:
    Standard Grant
  • 资助金额:
    $3.0万
  • 财政年份:
    2015
  • 负责人:
    Luciano Castillo
  • 依托单位:
The Role of Inlet Perturbations on Superstructures of Turbulent Boundary Layers- Toward Global Flow Control
  • 批准号:
    1512393
  • 项目类别:
    Standard Grant
  • 资助金额:
    $20.86万
  • 财政年份:
    2015
  • 负责人:
    Luciano Castillo
  • 依托单位:
海外基金