A New Iterative Design Strategy for Steel Frames Modelled by Generalised Multi-stepped Beam Elements

S. Benfratello, Salvatore Caddemi, L. Palizzolo, B. Pantò, D. Rapicavoli
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Abstract

The paper deals with frame steel structures required to ensure sufficient resistance, appropriate ductility and safety against brittle failure. This special aim cannot be reached by utilizing standard procedures and standard beam elements. Therefore, the present study proposes an innovative design strategy devoted to plane steel frames constituted by I-shaped cross-section beam elements and subjected to simultaneous combinations of serviceability limit state conditions and ultimate limit state conditions. Special factory-made I-shaped uniform piecewise steel profiles are utilised to provide the optimal behaviour of the frame. The proposed design strategy consists of two subsequent steps: at first a classical sizing of the frame is performed by utilising standard steel profiles, then a specific optimal design problem is performed to define the optimal geometry of the I-shaped steel profiles that fulfils all the constraints related to the required resistance and the limited deformability as well as special introduced constraints related to the protection against the brittle failure. The reliability of the procedure and the expected optimal behaviour of the frame are checked by performing nonlinear static analyses employing a recently proposed Fibre Smart Displacement-Based (FSDB) beam element model. The proposed beam element is defined by adopting displacement shape functions capable of embedding the cross-section discontinuities by means of the use of generalised functions. Furthermore, the proposed shape functions are addressed to as “smart” since capable of update in accordance with the development of plastic deformations detected by means of fibre discretisation of the cross-section. The results related to a simple steel portal confirmed the expected optimal behaviour of the structure.
采用广义多阶梁元素建模的钢框架迭代设计新策略
本文论述了框架钢结构需要确保足够的抗力、适当的延展性和脆性破坏的安全性。利用标准程序和标准梁元素无法达到这一特殊目的。因此,本研究提出了一种创新的设计策略,专门针对由工字形截面梁构件构成的平面钢框架,并将其同时置于适用性极限状态条件和极限状态条件的组合中。利用工厂制造的特殊工字形均匀片状钢型材来实现框架的最佳性能。所提出的设计策略包括两个后续步骤:首先利用标准型钢对框架进行传统的尺寸确定,然后执行特定的优化设计问题,以确定工字形型钢的最佳几何形状,从而满足与所需阻力和有限变形能力有关的所有约束条件,以及与防止脆性破坏有关的特殊引入约束条件。通过使用最近提出的基于纤维智能位移(FSDB)的梁元素模型进行非线性静态分析,检验了该程序的可靠性和框架的预期最佳性能。所提议的梁元素是通过采用位移形状函数来定义的,这种函数能够通过使用广义函数来嵌入横截面的不连续性。此外,提出的形状函数被称为 "智能 "函数,因为它能够根据横截面纤维离散化检测到的塑性变形的发展进行更新。与一个简单的钢结构门户相关的结果证实了该结构的预期最佳性能。
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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