An initial subsystem stiffness-integrated seismic performance optimization approach for super high-rise frame-core tube structures using generalized models

IF 4.6 2区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Xiao Lai , Zheng He , Jian Yang , Zichen Li
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引用次数: 0

Abstract

Complex super high-rise frame-core tube (FCT) structures often present numerical challenges during seismic optimization due to their numerous components and high lateral stiffness requirements. In response to these challenges, this study proposes an efficient initial subsystem stiffness-triggered optimization and performance control strategy, developed through newly created nonuniform flexure-shear coupled models (FSM-MS) and hybrid rocking models (HRM). A physically rational link is established for the estimate of subsystem stiffness of FCT structures by HRM and FSM-MS via the distributions of overturning moments and shear forces. The variations in dynamic properties resulting from stiffness degradation in concrete core tubes and exterior columns, as well as the vertical displacement ductility demand of steel outriggers, are utilized to assess the damage of each subsystem within the four-level performance-based seismic design framework. The subsystem damage is incorporated into the formulation of a multi-objective optimization problem, with structural cost and collapse margin ratio as the objectives, and constraints defined from three distinct aspects. The convergence, computational efficiency and stability of the proposed optimization strategy is systematically demonstrated on the case study of a 60-story FCT structure. It is observed to be superior to the case of randomly-generated initial samples and practically applicable for the seismic optimization of super high-rise FCT structures.
基于广义模型的超高层框架-核心筒结构初始子系统刚度综合抗震性能优化方法
复杂的超高层框架-核心筒结构(FCT)由于其构件众多,侧向刚度要求高,在抗震优化过程中经常遇到数值难题。为了应对这些挑战,本研究通过新创建的非均匀弯剪耦合模型(FSM-MS)和混合摇摆模型(HRM)提出了一种有效的初始子系统刚度触发优化和性能控制策略。通过倾覆力矩和剪力的分布,建立了HRM和FSM-MS对FCT结构子系统刚度估计的物理合理环节。由混凝土核心管和外柱刚度退化引起的动力性能变化,以及钢外伸臂的垂直位移延性需求,被用来评估四个基于性能的抗震设计框架内每个子系统的损伤。将子系统损伤纳入多目标优化问题,以结构成本和崩溃余量比为目标,从三个不同的方面定义约束条件。以60层FCT结构为例,系统地验证了该优化策略的收敛性、计算效率和稳定性。结果表明,该方法优于随机生成初始样本的情况,可用于超高层FCT结构的抗震优化。
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来源期刊
Soil Dynamics and Earthquake Engineering
Soil Dynamics and Earthquake Engineering 工程技术-地球科学综合
CiteScore
7.50
自引率
15.00%
发文量
446
审稿时长
8 months
期刊介绍: The journal aims to encourage and enhance the role of mechanics and other disciplines as they relate to earthquake engineering by providing opportunities for the publication of the work of applied mathematicians, engineers and other applied scientists involved in solving problems closely related to the field of earthquake engineering and geotechnical earthquake engineering. Emphasis is placed on new concepts and techniques, but case histories will also be published if they enhance the presentation and understanding of new technical concepts.
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