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首页> 外文期刊>Steel & Composite Structures: An International Journal >Lateral torsional buckling of steel I-beams: Effect of initial geometric imperfection
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Lateral torsional buckling of steel I-beams: Effect of initial geometric imperfection

机译:钢I光束的横向扭转屈曲:初始几何缺陷的影响

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摘要

In the current study, the influence of the initial lateral (sweep) shape and the cross-sectional twist imperfection on the lateral torsional buckling (LTB) response of doubly-symmetric steel I-beams was investigated. The material imperfection (residual stress) was not considered. For this objective, standard European IPN 300 beam with different unbraced span was numerically analyzed for three imperfection cases: (i) no sweep and no twist (perfect); (ii) three different shapes of global sweep (half-sine, full-sine and full-parabola between the end supports); and (iii) the combination of three different sweeps with initial sinusoidal twist along the beam. The first comparison was done between the results of numerical analyses (FEM) and both a theoretical solution and the code lateral torsional buckling formulations (EC3 and AISC-LRFD). These results with no imperfection effects were then separately compared with three different shapes of global sweep and the presence of initial twist in these sweep shapes. Besides, the effects of the shapes of initial global sweep and the inclusion of sinusoidal twist on the critical buckling load of the beams were investigated to unveil which parameter was considerably effective on LTB response. The most compatible outcomes for the perfect beams was obtained from the AISC-LRFD formulation; however, the EC-3 formulation estimated the P-cr load conservatively. The high difference from the EC-3 formulation was predicted to directly originate from the initial imperfection reduction factor and high safety factor in its formulation. Due to no consideration of geometric imperfection in the AISC-LFRD code solution and the theoretical formulation, the need to develop a practical imperfection reduction factor for AISC-LRFD and theoretical formulation was underlined. Initial imperfections were obtained to be more influential on the buckling load, as the unbraced length of a beam approached to the elastic limit unbraced length (L-r). Mode-compatible initial imperfection shapes should be taken into account in the design and analysis stages of the I-beam to properly estimate the geometric imperfection influence on the P-cr load. Sweep and sweep-twist imperfections led to 10% and 15% decrease in the P-cr load, respectively, thus; well-estimated sweep and twist imperfections should considered in the LTB of doubly-symmetric steel I-beams.
机译:在目前的研究中,研究了初始横向(扫描)形状的影响和对双对称钢I梁的横向扭转屈曲(LTB)响应的影响。不考虑材料缺陷(残留应力)。为此目的,具有不同卷积跨度的标准欧洲IPN 300梁,对三种缺陷案例进行了数值分析:(i)没有扫描,没有扭曲(完美); (ii)全球扫描的三种不同形状(半正弦,全柱和最终支持之间的全抛物线); (iii)三种不同的扫描与沿梁的初始正弦扭曲的组合。在数值分析(FEM)的结果和理论解和代码横向扭转配方(EC3和AISC-LRFD)之间进行第一个比较。然后将这些结果与无缺陷效应的结果分别与三种不同的全局扫描和这些扫描形状中的初始扭曲的存在相比。此外,研究了初始全局扫掠的形状的影响和对梁的关键屈曲负荷的抑制,以推出对LTB反应的显着有效的参数。从AISC-LRFD制剂中获得完美光束的最兼容的结果;然而,EC-3配方估计了保守的P-CR负荷。预计与EC-3配方的高差异预计直接源自其制剂中的初始缺陷减少因子和高安全系数。由于在AISC-LFRD码解决方案中的几何缺陷和理论制剂中没有考虑到几何缺陷,强调了为AISC-LRFD和理论制剂产生实际缺陷减少因子的需要。获得初始缺陷在屈曲负荷上更有影响力,因为光束的横向长度接近弹性限制长度(L-r)。在I-梁的设计和分析阶段,应考虑模式兼容的初始缺陷形状,以适当地估计对P-CR负载的几何缺陷影响。扫掠和扫掠缺陷分别导致P-CR负荷的10%和15%降低;估计的扫描和扭曲缺陷应考虑在双对称钢I光束的LTB中。

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