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Analysis of thin-walled steel beams retrofitted by bonding GFRP stiffeners: Numerical model and investigation of design parameters

机译:结合GFRP加强筋的薄壁钢梁分析:数值模型和设计参数研究

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摘要

Enhancing the load capacity of aged and deficient thin-walled steel structures can be accomplished by increasing member stiffness in buckling prone regions. The literature shows that composite materials have become a major player in retrofitting applications. A new strengthening concept, Strengthening-by-Stiffening (SBS), is applied to buckling prone web panels in thin walled steel beams by bonding pultruded glass fiber reinforced polymer (GFRP) sections. The first part of present study is focused on the construction of a finite element (FE) model for accurate simulation of experimentally obtained results. Initial imperfections, material non-linearity, inter laminar fracture law to simulate adhesive debonding, and GFRP rupture or delamination are accounted for in the construction of the FE model. The second part of the study was focused on parametric studies using the validated FE model to investigate different GFRP sizes, contact areas, panel aspect ratio and slenderness of the web panels on steel beam with SBS retrofitting. Results from the parametric study were used to establish some limits to assist in SBS design. Finally, possible use of SBS strengthening method in new construction was investigated by substituting all steel stiffeners with bonded composite GFRP stiffeners for the improvement of fatigue related behavior that is known to start at the weld toes of steel stiffeners.
机译:可以通过增加易弯曲区域的构件刚度来提高陈旧和不足的薄壁钢结构的承载能力。文献表明,复合材料已成为改装应用的主要参与者。通过粘合拉挤玻璃纤维增​​强聚合物(GFRP)截面,一种新的加固概念,即“加固加固”(SBS)应用于薄壁钢梁中易弯曲的腹板。本研究的第一部分侧重于有限元(FE)模型的构建,以精确模拟实验获得的结果。有限元模型的构建考虑了初始缺陷,材料非线性,模拟粘合剂剥离的层间断裂定律以及GFRP断裂或分层。研究的第二部分集中于使用经过验证的有限元模型进行的参数研究,以研究不同的GFRP尺寸,接触面积,面板宽高比以及钢板在SBS改造中的腹板的细长度。参数研究的结果用于建立一些限制,以帮助SBS设计。最后,通过将所有钢加强筋替换为粘结的复合GFRP加强筋,研究了SBS加固方法在新结构中的可能用途,以改善与疲劳相关的行为,这种行为从钢加强筋的焊趾开始。

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