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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 >Cyber-physical design and optimization of tall building dynamics using aeroelastic wind tunnel modeling
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Cyber-physical design and optimization of tall building dynamics using aeroelastic wind tunnel modeling

机译:空气弹性风洞建模的网络物理设计与高层建筑动力学优化

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摘要

This study explores the use of an automated cyber-physical system (CPS) framework for the design and optimization of tall building dynamics through aeroelastic boundary layer wind tunnel (BLWT) testing. The framework is fully automated, integrating experimental BLWT modeling with numerical optimization algorithms to rapidly evaluate a wide range of candidate designs. In this study, candidate tall building designs are generated by physically adjusting the dynamic properties of a multi-degree-of-freedom (MDOF) aeroelastic model. The specimen is equipped with an actuation system consisting of a series of variable stiffness devices (VSD), which enable precise control of the lower natural frequencies. The specimen is also instrumented with accelerometers and displacement sensors to capture wind-induced building response. A stochastic optimization algorithm evaluates the fitness of each candidate design based on code-based and/or user-specified serviceability limit states related to occupant comfort and building drift (e.g., sway). Wind tunnel experiments were conducted at the University of Florida Natural Hazard Engineering Research Infrastructure (NHERI) Experimental Facility. Results show that the CPS framework can reliably drive the aeroelastic specimen to the optimal solution which minimizes stiffness (i.e., natural frequency) while satisfying multiple acceleration and drift constraints.
机译:本研究探讨了通过空气边界层风洞(BLWT)测试的高建筑动力学设计和优化的自动网络物理系统(CPS)框架。该框架完全自动化,与数值优化算法集成了实验性BLWT建模,迅速评估了各种候选设计。在这项研究中,通过物理调节多程度自由度(MDOF)空气弹性模型的动态性能来产生候选高层建筑设计。该样本配备有由一系列可变刚度装置(VSD)组成的致动系统,其能够精确控制较低的自然频率。样品还用加速度计和位移传感器仪表,以捕获风引起的建筑物响应。随机优化算法根据与乘员舒适和建筑物漂移(例如,摇摆)相关的基于代码和/或用户指定的可靠性限制状态来评估每个候选设计的适应性。风洞实验是在佛罗里达州自然危害工程研究基础设施(NHERI)实验设施大学进行的。结果表明,CPS框架可以可靠地将空气弹性标本驱动到最佳溶液,最小化刚度(即固有频率),同时满足多重加速度和漂移约束。

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