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Robust optimal design of tuned mass dampers for tall buildings with uncertain parameters

机译:参数不确定的高层建筑的调谐质量阻尼器的鲁棒优化设计

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In this paper a newly proposed approach to robust optimization is adopted in order to study the influence of uncertain structural parameters on the design of a passive control system The control devices are Tuned Mass Dampers placed on a tall building subjected to wind load. The uncertain structural variables are the floors’ mass and stiffness. The spatial variability of the mass over the floor’s surface is considered by ideally dividing each floor into a certain number of partitions in which the mass varies as a random variable. The robust optimization procedure is based on an enhanced Monte Carlo simulation technique and the genetic algorithm. The Latin Hypercube Sampling is employed to reduce the number of samples. The optimization of stiffnesses and dampings of the devices is carried out for each sample set of structural mass and stiffness matrices, allowing the evaluation of the probability distributions of the optimal parameters and the objective function. The robust designs are those having corresponding values of the objective function lying in the neighborhood of the expected value of the distribution The robust optimization is applied to a tall building controlled by a Tuned Mass Damper and subjected to wind loads obtained from wind tunnel tests. Several numerical analyses are carried out considering different numbers of surface partitions. Both the separate and joint influence of the mass and stiffness uncertainty is considered. The results show that the selected designs are robust, as they guarantee a small variability of structural performance caused by uncertainties.
机译:为了研究不确定的结构参数对被动控制系统设计的影响,本文采用了一种新提出的鲁棒优化方法。控制设备是置于风荷载作用下的高层建筑上的调谐质量阻尼器。不确定的结构变量是地板的质量和刚度。可以通过将地板理想地划分为一定数量的分区来考虑地板表面质量的空间变异性,在这些分区中质量作为随机变量而变化。鲁棒的优化过程基于增强的蒙特卡洛模拟技术和遗传算法。采用Latin Hypercube Sampling减少了样本数量。针对结构质量和刚度矩阵的每个样本集,对设备的刚度和阻尼进行了优化,从而可以评估最佳参数和目标函数的概率分布。稳健的设计是目标函数的相应值位于分布的预期值附近的稳健设计。稳健的优化应用于由调谐质量阻尼器控制的高层建筑,并经受从风洞测试中获得的风荷载。考虑到不同数量的表面分区,进行了一些数值分析。考虑了质量和刚度不确定性的单独影响和共同影响。结果表明,所选设计具有鲁棒性,因为它们可以保证由不确定性引起的结构性能的较小变化。

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