提高高层建筑的地震反应:从网格到巨型结构和巨型子控制系统

D. Faiella, M. Argenziano, Elena Mele
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引用次数: 0

摘要

网格结构广泛应用于本世纪的高层建筑,由于网格三角化,网格结构在弹性场中具有非常有效的性能。特别是在水平作用下,轴向力和变形主要产生于格网结构构件,从而减少了剪力滞效应和货架变形。然而,对超过塑性阈值的增量水平作用的响应显示出较差的塑性再分配能力,从而导致整体延性值较低,尽管设计强度过高。本文提出利用网格型结构的高弹性效率,采用基于大质量比的质量阻尼机制的振动控制系统,先验地降低地震作用引起的非弹性需求。本文从分析典型斜拉网建筑的抗震性能入手,选取了一个案例来评估基于运动的设计方法的有效性。为此,格栅首先通过在压力最大的角落区域和转换楼层致密化对角线元素,适当地选择,转变为巨型结构(MS)配置。然后,外部巨型框架与内部子结构分离,从而允许根据“巨型子结构控制系统”(MSCS)在两个结构部分之间进行相对运动,该系统激活质量阻尼机制。对简化的集总质量模型进行时程分析,证实了所提出的策略在降低地震反应方面的有效性。最后,讨论了MSCS的实际可行性和相关结构组织的工程解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving the Seismic Response of Tall Buildings: From Diagrid to Megastructures and Mega-Subcontrol Systems
Diagrid structures, widely used for the tall buildings of the third millennium, are characterized by a very effective behaviour in the elastic field due to the grid triangulation. In particular, under horizontal actions, axial forces and deformations mainly arise in the structural members of the diagrid, thus resulting in the reduction of the shear lag effect and racking deformations. The response to incremental horizontal actions beyond the plastic threshold, however, shows a poor plastic redistribution capacity, with consequent low values of global ductility, in spite of a significant design overstrength. In this paper, it is proposed to exploit the high elastic efficiency of the diagrid type and use a vibration control system, based on mass damping mechanism with large mass ratios, to reduce a priori the inelastic demands due to seismic actions. Starting from the analysis of the seismic behavior of archetype diagrid buildings, a case study is selected to assess the effectiveness of the proposed motion-based design approach. For this purpose, the diagrid is first transformed into a megastructure (MS) configuration by densifying the diagonal elements at the most stressed corner areas and transfer floors, suitably chosen. Then, the exterior mega-frame is detached from interior sub-structures, thus allowing for a relative motion between the two structural portions according to a “mega-sub-structure control system” (MSCS), which activates the mass damping mechanism. Time-history analyses carried out on simplified lumped-mass models confirm the effectiveness of the proposed strategy in reducing the seismic response. Finally, the practical feasibility of the MSCS and engineering solutions for the relevant structural organization are discussed.
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