OPTIMAL LATERAL RESISTING SYSTEMS FOR HIGH-RISE BUILDINGS UNDER SEISMIC EXCITATIONS

G. Angelucci, G. Quaranta, F. Mollaioli
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引用次数: 1

Abstract

. It is generally presumed that the design of tall buildings is mainly dictated by wind loads rather than seismic actions because of the high flexibility and, therefore, long natural periods. However, slender buildings exhibit a complex dynamic behavior, and the involvement of higher modes can result in higher flexural and shear demands than expected. Overlooking the importance of strength, stiffness, and stability requirements in seismic design of tall buildings can thus leads to excessive damage, large residual deformations, and even failure. In this regard, since pure rigid frames alone are not sufficient to withstand lateral loads, as those due to earthquakes, bracing systems are often introduced to stiffen the steel frameworks of tall buildings. The design of lateral bracing systems, in turn, calls for the selection of a suitable pattern for the diagonals arrangement, which is commonly performed through trial-and-error procedures that can require many iteration cycles. It is too evident that this approach does not neither ensure the convergence towards a design solution able to fulfill all requirements, nor the achievement of an optimal solution that minimizes the consumption of structural material and thus the total construction costs. In this context, topology optimization might represent an effective tool for improving the design of tall buildings under earthquake. Therefore, a topology optimization methodology is here presented to support the selection of the most effective design solution for the lateral bracing systems of
高层建筑在地震作用下的最优横向抗力体系
. 一般认为,高层建筑的设计主要是由风荷载而不是地震作用决定的,因为它的灵活性高,因此自然周期长。然而,细长的建筑表现出复杂的动力行为,高模态的参与可能导致比预期更高的弯曲和剪切需求。在高层建筑抗震设计中,如果忽视强度、刚度和稳定性要求的重要性,就会导致高层建筑损伤过大,残余变形大,甚至破坏。在这方面,由于单纯的刚性框架本身不足以承受侧向载荷,如地震引起的侧向载荷,因此经常引入支撑系统来加强高层建筑的钢框架。横向支撑系统的设计,反过来,要求为对角线排列选择合适的模式,这通常是通过反复试验的过程来执行的,这可能需要许多迭代周期。很明显,这种方法既不能确保趋同于能够满足所有要求的设计解决方案,也不能实现最小化结构材料消耗的最佳解决方案,从而减少总建筑成本。在此背景下,拓扑优化可能是改进高层建筑抗震设计的有效工具。因此,本文提出了一种拓扑优化方法,以支持选择最有效的横向支撑系统设计方案
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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