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首页> 外文期刊>Journal of Wind Engineering and Industrial Aerodynamics: The Journal of the International Association for Wind Engineering >Optimal design of structures using cyber-physical wind tunnel experiments with mechatronic models
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Optimal design of structures using cyber-physical wind tunnel experiments with mechatronic models

机译:用机电型模型使用网络 - 物理风洞实验的结构优化设计

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摘要

AbstractThis paper explores the use of a cyber-physical systems (CPS) approach to optimize the design of rigid, low-rise structures subjected to wind loading, with the intent of producing a foundational method to study more complex structures through future research. The CPS approach combines the accuracy of physical wind tunnel testing with the ability to efficiently explore a search space using numerical optimization algorithms. The approach is fully automated, with experiments executed in a boundary layer wind tunnel (BLWT), sensor feedback monitored by a computer, and actuators used to bring about physical changes to a mechatronic structural model. Because the model is undergoing physical change as it approaches the optimal solution, this approach is given the name “loop-in-the-model” optimization.Proof-of-concept was demonstrated for a low-rise structure with a parapet wall of variable height. Parapet walls alter the location of the roof corner vortices, reducing suction loads on the windward facing roof corners and edges and setting up an interesting optimal design problem. In the BLWT, the parapet height was adjusted using servo-motors to achieve a particular design. Experiments were conducted at the University of Florida Experimental Facility (UFEF) of the National Science Foundation's (NSF) Natural Hazard Engineering Research Infrastructure (NHERI) program.
机译:<![CDATA [ 抽象 本文探讨了网络物理系统(CPS)方法优化刚性,低的设计关于风装的结构,旨在通过未来的研究制作更复杂的结构的基本方法。 CPS方法相结合了物理风洞测试的准确性,利用数值优化算法有效地探索搜索空间的能力。该方法是完全自动化的,实验在边界层风隧道(BLWT)中执行,由计算机监控的传感器反馈,并且用于为机电结构模型带来物理变化的致动器。由于该模型正在接近最佳解决方案时进行物理变化,因此将该方法提供“循环循环”优化。 概念验证是针对具有可变高度的栏杆墙的低层结构进行了演示。 Parapet墙改变屋顶角涡流的位置,减少了迎风面的屋顶角落和边缘上的吸入载荷,并建立一个有趣的最佳设计问题。在BLWT中,使用伺服电机调节栏杆高度,以实现特定的设计。实验在国家科学基金会(NSF)自然危险工程研究基础设施(NHERI)计划的佛罗里达大学实验设施(UFEF)进行。

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