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Structural performance of elliptical hollow section (EHS) steel tubular braces under extremely low cycle fatigue loading - a finite element study

机译:极低周疲劳载荷下椭圆空心截面(EHS)钢管支架的结构性能-有限元研究

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摘要

A comprehensive non-linear analysis of EHSs under extremely-low-cycle fatigue (ELCF) loading is necessary to accurately assess their cyclic energy dissipation, which is one of the primary factors in the selection of brace parameters, for enhanced seismic performance. This study emphasizes the cyclic response of twenty EHS finite element modeled steel braces of constant cross-sectional steel area, A and wall thickness, t, by employing a non-linear combined isotropic/kinematic hardening material model in Abaqus. Cross-sectional aspect ratio (major to minor axis diameter ratio, a/b) and non-dimensional global slenderness (I) ranging between 1-2 and 0.3-2 respectively, are considered. Parametric studies are conducted to investigate the hysteresis behaviour of EHS models at various displacement ductility levels under cyclic axial displacement loading history based on the recommendations of ECCS. It is observed that cross-sectional aspect ratio has less significance on compressive resistance and energy dissipation values at cyclic displacements of higher displacement ductility levels for sections with non-dimensional global slenderness ratio greater than -0.8. Design curves for post-buckling compressive resistance of HSS braces at various displacement ductility levels as per AISC LRFD methodology are also proposed.
机译:EHS在极低周疲劳(ELCF)载荷下的全面非线性分析对于准确评估其循环能量耗散是必要的,这是选择支撑参数以提高抗震性能的主要因素之一。这项研究通过在Abaqus中采用非线性各向同性/运动硬化组合材料模型,强调了20个具有恒定横截面钢面积A和壁厚t的EHS有限元模型钢支撑的循环响应。分别考虑了横截面的长宽比(长轴直径与短轴直径之比,a / b)和无量纲的整体细长度(I),范围在1-2和0.3-2之间。根据ECCS的建议,进行了参数研究,以研究EHS模型在各种位移延性水平下在循环轴向位移载荷历史下的磁滞行为。可以看出,对于无量纲整体细长比大于-0.8的截面,在较高位移延展性水平的周期性位移下,横截面纵横比对压缩阻力和能量耗散值的影响较小。还提出了根据AISC LRFD方法在不同位移延性水平下HSS支撑屈曲后抗压强度的设计曲线。

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