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Cyclic behavior of steel I-beams modified by a welded haunch and reinforced with GFRP

机译:焊接横梁改性和玻璃纤维增​​强的钢工字钢的循环性能

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Flange and web local buckling in beam plastic hinge regions, of steel moment frames can prevent beam-column connections from achieving adequate plastic rotations under earthquake-induced forces. Reducing the flange-web slenderness ratios (FSR/WSR) of beams is the most effective way in mitigating local member buckling as stipulated in the latest seismic design specifications. However, existing steel moment frame buildings with beams that lack the adequate slenderness ratios set forth for new buildings are vulnerable to local member buckling and thereby system-wise instability prior to reaching the required plastic rotation capacities specified for new buildings. This paper presents results from a research study investigating the cyclic behavior of steel I-beams modified by a welded haunch at the bottom flange and reinforced with glass fiber reinforced polymers at the plastic hinge region. Cantilever I-sections with a triangular haunch at the bottom flange and flange slenderness ratios higher then those stipulated in current design specifications were analyzed under reversed cyclic loading. Beam sections with different depth/width and flange/web slenderness ratios (FSR/WSR) were considered. The effect of GFRP thickness, width, and length on stabilizing plastic local buckling was investigated. The FEA results revealed that the contribution of GFRP strips to mitigation of local buckling increases with increasing depth/width ratio and decreasing FSR and WSR. Provided that the interfacial shear strength of the steel/GFRP bond surface is at least 15 MPa, GFRP reinforcement can enable deep beams with FSR of 8-9 and WSR below 55 to maintain plastic rotations in the order of 0.02 radians without experiencing any local buckling.
机译:钢制矩型梁的梁塑料铰链区域中的法兰和腹板局部屈曲可防止梁柱连接在地震作用下获得足够的塑性旋转。降低梁的翼缘纤网细长比(FSR / WSR)是缓解最新抗震设计规范中规定的局部构件屈曲的最有效方法。然而,现有的钢制矩型框架结构的梁缺乏为新建筑物设定的适当的长细比,因此在达到新建筑物指定的所需塑料旋转能力之前,容易受到局部构件屈曲的影响,从而导致系统不稳定。本文介绍了一项研究的结果,该研究研究了钢制I型钢的循环行为,该钢I型钢在底部凸缘处采用焊接方式进行了改性,并在塑料铰链区域采用了玻璃纤维增​​强的聚合物进行了加固。在反向循环载荷下分析了悬臂工字型截面,其底部凸缘处有三角形的斜角,并且凸缘的细长比高于当前设计规范中规定的比率。考虑了具有不同深度/宽度和翼缘/腹板细长比(FSR / WSR)的梁截面。研究了GFRP厚度,宽度和长度对稳定塑料局部屈曲的影响。有限元分析结果表明,随着深度/宽度比的增加以及FSR和WSR的降低,GFRP条带对减轻局部屈曲的贡献也随之增加。如果钢/ GFRP粘结表面的界面剪切强度至少为15 MPa,则GFRP加固可以使FSR为8-9且WSR低于55的深梁保持0.02弧度的塑性旋转,而不会出现任何局部屈曲。

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