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A parametric approach for building-integrated wind energy incorporating passive and active flow control techniques.

机译:一种采用被动和主动流量控制技术的建筑物集成风能参数化方法。

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摘要

This dissertation proposes and evaluates techniques for the integration of active air flow control into building envelopes in order to allow for diverse and flexible applications for managing air flow including amplification for more effective capture of wind power. Existing building-integrated wind approaches have typically utilized large turbines to ensure high energy yields; this has restricted the viability of building-integrated wind in most built-up areas, where the presence of low wind speeds reduces the energy output, and the large turbines create myriad structural, aesthetic and acoustical challenges. Smaller turbines have not yet proved viable for ubiquitous applications as their outputs are hampered by the air flow conditions within urban areas. This research proposes and evaluates the use of active flow control to overcome the limitations of current strategies for building-integrated wind energy capture by enhancing the energy yields of small turbines, thus avoiding many of the problems faced by using large turbines on buildings.;As a point of departure, the research uses air flow amplification geometries from the Wind Amplified Rotor Platform (WARP) system as a baseline to establish the passive amplification of air flow through the physical aerodynamic shaping of the building envelope and investigates the viability of 'virtually' reproducing the amplification through the use of active flow control techniques. Geometric principles from the WARP were first incorporated within building envelope designs in simulation studies for the purpose of analyzing various parameters for the passive amplification of wind flows. In comparing the cost to benefit ratios, the energy produced was included in a parametric trade-off analysis framework that included various factors for construction complexity and cost associated with passive amplification techniques. The value proposition for active amplification techniques was analyzed through the integration of synthetic jets within building studies in order to test their potential for increasing energy yields from small turbines mounted on bluff building envelopes.;A series of wind tunnel tests were conducted based on the simulation studies, which demonstrated the capability of active flow control to replace the use of passive techniques for air flow amplification. The simulations and experiments ultimately culminated in the development of a parametric decision making construct that integrated the complex analysis of wind energy generation with a synergistic approach to air flow management. The conclusions from this research show potential for an extremely significant role for active air flow control techniques for the extraction of wind energy within building envelope assemblies. Additionally, the significant synergistic benefits from incorporating active air flow control for more efficient building construction and operational energy use point towards the necessity for further research to investigate the myriad benefits that could result from the transfer of this emerging technology from the field of aeronautics to building applications.
机译:本文提出并评估了将主动气流控制集成到建筑物围护结构中的技术,以允许各种灵活的应用来管理气流,包括放大以更有效地捕获风能。现有的建筑物集成风能方法通常利用大型涡轮机来确保高能量产出。这限制了在大多数建筑区域中集成风的可行性,在这些区域中,低风速的存在降低了能量输出,而大型涡轮机在结构,美学和声学方面带来了无数挑战。小型涡轮机尚未被证明适用于普遍应用,因为它们的输出受到市区内气流条件的阻碍。这项研究提出并评估了主动流控制的使用,以通过提高小型涡轮机的发电量来克服当前建筑集成风能捕获策略的局限性,从而避免了在建筑物上使用大型涡轮机所面临的许多问题。出发点是,该研究以风力放大转子平台(WARP)系统中的气流放大几何形状为基准,通过建筑围护结构的物理空气动力学造型建立了被动的气流放大,并研究了“虚拟”的可行性通过使用主动流控制技术来再现放大。 WARP的几何原理首先被纳入模拟研究的建筑围护结构设计中,目的是分析各种参数以被动放大风量。在比较成本效益比时,将产生的能量包含在参数权衡分析框架中,该框架包括各种因素导致施工复杂性以及与被动放大技术相关的成本。通过将合成射流整合到建筑物研究中,分析了有源放大技术的价值主张,以测试安装在虚张声势的建筑围护结构上的小型涡轮机增加合成能源的潜力。研究表明,主动式流量控制具有取代被动式技术进行空气流量放大的功能。仿真和实验最终以参数化决策结构的发展为最终结果,该结构将对风能发电的复杂分析与用于气流管理的协同方法相集成。这项研究得出的结论表明,主动气流控制技术在建筑围护结构中提取风能的潜力非常巨大。此外,将主动空气流量控制技术用于更有效的建筑结构和可操作的能源使用,可带来显着的协同效益,这表明有必要进行进一步研究,以研究这种新兴技术从航空领域转移到建筑领域可能带来的诸多好处。应用程序。

著录项

  • 作者

    Rao, Ajith Mulky.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Alternative Energy.;Architecture.;Engineering Architectural.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 308 p.
  • 总页数 308
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:21

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