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A firefly algorithm for the design of force and placement of friction dampers for control of man-induced vibrations in footbridges

机译:一种萤火虫算法,用于设计力和摩擦阻尼器的位置,以控制人行桥的人为振动

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摘要

It is known that the use of passive energy dissipation devices, as friction dampers, reduces significantly the dynamic response of structures subjected to dynamic actions. However, the parameters of each damper as well as the best placement of these devices remain difficult to determine. Although some studies on optimization of tuned mass damper and viscous/viscoelastic dampers are being developed, works on optimum use of friction dampers is still lacking. Thus, in this paper, the simultaneous optimization of force and placement of friction dampers is proposed. To solve this optimization problem, the recently developed firefly algorithm is employed, which is able to deal with non-convex optimization problems, involving mixed discrete and continuous variables. For illustration purposes, two common footbridges are analyzed, in which the cost function is to minimize the maximum acceleration of the structures, whereas forces and positions of friction dampers are the design variables. The results showed that the proposed method was able to determine the optimum friction forces of each damper as well as their best positions in the structures. The maximum acceleration was reduced in more than 95 % for the Warren truss footbridge, with three friction dampers, and in more than 92 % for the Pratt truss footbridge, with only two friction dampers. In addition, the proposed methodology is quite general and it is believed that it can be recommended as an effective tool for optimum design of friction dampers for structural response control. Thus, this paper shows that the design of friction dampers can be done in a safe and economic way.
机译:已知使用无源能量耗散装置作为摩擦阻尼器会显着降低经受动态作用的结构的动态响应。但是,每个阻尼器的参数以及这些设备的最佳放置仍然难以确定。尽管正在开发一些有关优化调谐质量阻尼器和粘性/粘弹性阻尼器的研究,但仍缺乏优化使用摩擦阻尼器的工作。因此,本文提出了同时优化摩擦阻尼器的力和位置的方法。为了解决该优化问题,采用了最近开发的萤火虫算法,该算法能够处理涉及混合离散和连续变量的非凸优化问题。为了说明的目的,分析了两个常见的人行天桥,其中成本函数是使结构的最大加速度最小化,而摩擦阻尼器的力和位置是设计变量。结果表明,所提出的方法能够确定每个阻尼器的最佳摩擦力以及它们在结构中的最佳位置。使用三个摩擦阻尼器的Warren桁架人行桥的最大加速度降低了95%以上,仅使用两个摩擦阻尼器的普拉特桁架人行桥的最大加速度降低了92%以上。另外,所提出的方法是相当通用的,并且可以认为它可以被推荐为一种用于结构响应控制的摩擦阻尼器的最佳设计的有效工具。因此,本文表明,摩擦阻尼器的设计可以安全,经济地完成。

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