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首页> 外文期刊>Journal of intelligent material systems and structures >Cost-effective multi-objective optimal positioning of magnetorheological dampers and active actuators in large nonlinear structures
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Cost-effective multi-objective optimal positioning of magnetorheological dampers and active actuators in large nonlinear structures

机译:大型非线性结构中具有成本效益的磁流变阻尼器和主动执行器的多目标最优定位

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The optimal number and location of control devices not only play a major role in an effective structural control system but also lead to a cost-effective design. This article presents a multi-objective optimization method based on a new genetic algorithm for simultaneous finding of the optimal number and placement of actuators and magnetorheological dampers, in active and semi-active vibration control of structures. The proposed strategy considers three objective functions to be minimized through optimization, including peak inter-storey drift ratio, peak acceleration and peak base shear force to make sure both human comfort and safety of the structure are guaranteed. Also, by choosing a pre-defined level of performance on dynamic responses of a structure, the designer can decide on decreasing or increasing the number of control devices in a systematic way and minimize the control cost. The approach is then validated through a nonlinear 20-storey benchmark problem. The results from active control system show how a problem that was initially solved with 25 actuators can be solved with less than a quarter of those actuators, having similar results in terms of aforementioned indices. The optimal distribution of different numbers of magnetorheological dampers in the same benchmark building is also studied in this article and compared to those obtained from actuators. Due to highly nonlinear behaviour of these devices, and also the complexity of the under-study benchmark structure, few reported researches have been conducted in this area. Also, the comparison between optimal places of active and semi-active control devices in the same structure has hitherto not been reported in the open literature.
机译:控制设备的最佳数量和位置不仅在有效的结构控制系统中起着重要作用,而且还导致了具有成本效益的设计。本文提出了一种基于新遗传算法的多目标优化方法,该方法可同时发现结构的主动和半主动振动控制中致动器和磁流变阻尼器的最佳数量和位置。所提出的策略考虑了通过优化来最小化三个目标函数,包括峰间层间漂移比,峰加速度和峰基础剪力,以确保人的舒适性和结构安全性。同样,通过选择结构的动态响应的预定性能水平,设计人员可以系统地决定减少或增加控制设备的数量,并使控制成本降至最低。然后通过非线性20层基准问题验证该方法。主动控制系统的结果表明,用不到25%的执行器就能解决最初解决的问题,而这些执行器的不到四分之一,就上述指标而言,结果相似。本文还研究了在同一基准建筑物中不同数量的磁流变阻尼器的最佳分布,并将其与从执行器获得的分布进行了比较。由于这些设备的高度非线性行为,以及研究不足的基准结构的复杂性,在这一领域进行的报道很少。而且,迄今为止,尚未在公开文献中报道相同结构中的主动和半主动控制装置的最佳位置之间的比较。

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