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Seismic control of modularized suspended structures with optimal vertical distributions of the secondary structure parameters

机译:具有最佳垂直分布的二级结构参数的模块化悬挂结构的地震控制

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Suspended building systems with vibration control features dissipate seismic energy by the interaction between their main parts and the suspended parts; they are also architecturally appealing. A modularized suspended structure has been previously proposed to overcome the fragility of its secondary structure and to enhance overall attenuation. However, the full potential of modularization is yet to be achieved via the previous configuration, especially in terms of multi-mode control. In this study, the protection effect of prefabricated modules is further harnessed in such a way that drastic vertical-irregularities of inter-story stiffness and dampers within the suspended segment are allowed. Vertical distribution vectors of structural parameters were set as the variables in genetic-algorithm optimizations, with the maximum mean square moment of the primary structure being the main objective. The results show considerably improved attenuation of responses in multiple modes instead of only the fundamental mode. In the optimized distributions, peaks of damping coefficient occur at the troughs of inter-story stiffness, but without a highly concentrated pattern. Models with different irregularity levels have well-separated Pareto fronts; this indicates that comprehensive improvement can be obtained at compromised choices. The main mechanism is that, with the well-designed irregularities, the secondary structure provides satisfactory dissipation and tuning to the primary structure in the major modes. The analysis with non-stationary excitations reveals that optimized vertical distributions further quicken the vibration decay. The time-history performance verifications and the structural uncertainty analysis are also carried out.
机译:具有振动控制功能的悬挂式建筑系统通过其主要部分与悬挂部分之间的相互作用来消散地震能量。它们在结构上也很有吸引力。先前已经提出了模块化的悬挂结构,以克服其二级结构的脆弱性并增强整体衰减。但是,模块化的全部潜力尚未通过先前的配置实现,特别是在多模式控制方面。在这项研究中,预制模块的保护效果得到了进一步的利用,从而使得悬空层中的层间刚度和阻尼器具有了极大的垂直不规则性。在遗传算法优化中,将结构参数的垂直分布向量设置为变量,以主要结构的最大均方矩为主要目标。结果表明,在多种模式下,不仅在基本模式下,响应衰减明显改善。在优化的分布中,阻尼系数的峰值出现在层间刚度的波谷处,但没有高度集中的模式。具有不同不规则度的模型具有良好分离的Pareto前沿;这表明在妥协的选择下可以获得全面的改进。主要机制是,通过精心设计的不规则性,二级结构在主要模式下为一级结构提供了令人满意的耗散和调整。非平稳激励分析表明,优化的垂直分布进一步加快了振动衰减。还进行了时程性能验证和结构不确定性分析。

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