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Buckling Strength and Ductility Evaluation of Thin-Walled Steel Tubular Columns with Uniform and Graded Thickness under Cyclic Loading

机译:循环荷载作用下均等梯度厚度薄壁钢管柱的屈曲强度和延性评估

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摘要

Thin-walled steel tubular columns with circular cross sections are widely used as cantilever piers in bridges due to their excellent structural and constructional advantages. However, local buckling, global buckling, or the interaction between both is usually the main reason for the significant strength reductions in these columns, which eventually leads to their collapse. This article investigates the behavior of thin-walled steel tubular columns with conventional uniform circular sections (Cs) and newly proposed graded-thickness circular sections (GCs) under combined constant axial and cyclic lateral loading. The analysis is carried out using a finite-element model (FEM) that takes into account both material and geometric nonlinearities. First, the accuracy of the employed FEM is substantiated using the experimental data available in the literature. Then, the GC column with a size and volume of material equivalent to the C column is introduced. The proposed GC column is proved to have significant improvements in strength, ductility, and postbuckling behavior compared with its counterpart C column. As part of the investigation, an extensive parametric study is carried out to investigate the effects of various important parameters, such as radius-to-thickness ratio parameter (R-t), column slenderness ratio parameter (), magnitude of axial load (P/P-y), and number of loading cycles (N), on the strength and ductility of the columns. Finally, design formulas for strength and ductility evaluation of C and GC columns are proposed.
机译:具有圆形横截面的薄壁钢管柱由于其出色的结构和构造优势而被广泛用作桥梁的悬臂桥墩。但是,局部屈曲,整体屈曲或两者之间的相互作用通常是导致这些柱强度显着降低的主要原因,最终导致其塌陷。本文研究了具有常规均匀圆形截面(Cs)和新提出的渐变厚度圆形截面(GCs)的薄壁钢管柱在恒定的轴向和循环横向荷载作用下的性能。使用有限元模型(FEM)进行分析,该模型同时考虑了材料和几何非线性。首先,使用文献中提供的实验数据来证明所采用的有限元法的准确性。然后,引入具有与C柱相当的材料大小和体积的GC柱。事实证明,与同类C色谱柱相比,拟议的GC色谱柱在强度,延展性和屈曲后性能方面均有显着提高。作为研究的一部分,我们进行了广泛的参数研究,以研究各种重要参数的影响,例如半径与厚度比参数(Rt),圆柱体细长比参数(),轴向载荷的大小(P / Py)。 ),以及加载次数(N),取决于柱子的强度和延展性。最后,提出了用于C和GC色谱柱强度和延性评估的设计公式。

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