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Stiffness-Strength-Ductility Design Approach: an application to a five-storey steel building structure

机译:刚度 - 强度 - 延展性设计方法:五层钢制建筑结构的应用

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It is known that the seismic response of a structural system is highly influenced, in addition to the earthquake input, by the dynamic characteristics of the system itself. Many recent contributions in the field of seismic engineering have opened up new possibilities for the structural engineer in terms of conceiving and designing a structural system which offers optimised seismic performances. This paper presents an innovative approach for an optimised/full-controlled seismic design of structures which combines these recent contributions, and overcomes the traditional design approach leading to the identification of the characteristics of the structural system resisting to horizontal loads which enables to satisfy given seismic performance objectives. This is achieved by considering a total conceptual separation between the structural systems resisting to vertical and horizontal loads. The proposed procedure is first briefly developed in general within a PBSD framework and then fully applied to the case study of a five-storey steel building structure. It is composed of three basic steps: (1) calibration of the fundamental characteristics (Stiffness, Strength, Ductility) which should be possessed by the structural system resisting to the horizontal loads to satisfy given performance objectives, (2) identification of the physical and geometrical characteristics of the single structural elements which constitute the horizontal resisting system, (3) verification, by means of appropriate time-history analyses, of the seismic performances achieved. In detail, the horizontal resisting system is calibrated to satisfy a multiplicity of performance objectives through the identification of an "objectives curve", in the Force-Displacement diagram, of the mechanical characteristics of the structure. The calibration is obtained by methods/tools borrowed either from DDBD or Force-Based Design (FBD), depending on the specific performance objective to be imposed.
机译:众所周知,除了地震投入之外,结构系统的地震响应是高度影响,除了地震输入,通过系统本身的动态特性。在地震工程领域的许多贡献在构思和设计结构系统方面开辟了结构工程师的新可能性,该结构系统提供了优化的地震性能。本文提出了一种创新方法,可实现优化/全控制的结构的结构,这些方法结合了这些最近的贡献,克服了传统的设计方法,导致识别抵抗水平载荷的结构系统的特性,这使得能够满足给定的地震表现目标。这是通过考虑抵抗垂直和水平载荷的结构系统之间的总概念分离来实现。拟议的程序首先在PBSD框架内简要开发,然后完全应用于五层钢结构结构的案例研究。它由三个基本步骤组成:(1)校准基本特征(刚度,强度,延展性),其结构系统应具有抵抗水平载荷的结构系统,以满足给定的性能目标,(2)识别物理和构成水平抗蚀系统的单一结构元件的几何特征,(3)通过适当的时际历史分析验证的地震性能。详细地,通过识别结构的力位移图中的“物镜曲线”,校准水平抗蚀系统以满足多个性能目标。根据从DDBD或基于力的设计(FBD)借用的方法/工具获得校准,具体取决于要施加的特定性能目标。

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