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Distortional theory for the analysis of wide flange steel beams

机译:变形理论用于宽翼缘钢梁分析

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A distortional theory is developed for the analysis of doubly symmetric and mono-symmetric wide flange beams under general loading. The governing differential equations of equilibrium and associated boundary conditions are derived based on the principle of potential energy. The theory captures shear deformation effects in the web and local and global warping effects. In contrast to classical beam theories, the present study captures web distortion by accounting for its flexibility within the plane of the cross-section while considering the flanges as Euler-Bernoulli beams. The formulation yields two systems of coupled differential equations of equilibrium in seven displacements fields. The first system governs the longitudinal transverse response and involves three displacement fields, and the second system governs the lateral torsional response and involves four displacement fields. Closed form solutions are then developed for both coupled systems under general loading. Numerical solutions for practical problems are then provided to illustrate the applicability of the formulation. Comparisons to results based on 3D shell finite element solutions show the validity of the results. The theory preserves the relative simplicity of one dimensional beam theories while effectively capturing the three-dimensional distortional phenomena normally captured within computationally expensive 3D FEA.
机译:提出了一种变形理论,用于分析一般荷载下的双对称和单对称宽翼缘梁。根据势能原理推导了控制平衡的微分方程和相关的边界条件。该理论捕获了腹板中的剪切变形效应以及局部和整体翘曲效应。与经典的梁理论相比,本研究通过考虑其在横截面平面内的柔韧性,同时将翼缘视为欧拉-伯努利梁来捕获腹板变形。该公式产生了两个在七个位移场中耦合的平衡微分方程组。第一个系统控制纵向横向响应并涉及三个位移场,第二个系统控制横向扭转响应并涉及四个位移场。然后在一般负载下为两个耦合系统开发了封闭形式的解决方案。然后提供了实际问题的数值解,以说明该制剂的适用性。与基于3D外壳有限元解决方案的结果的比较表明了结果的有效性。该理论保留了一维光束理论的相对简单性,同时有效地捕获了通常在计算上昂贵的3D FEA中捕获的三维畸变现象。

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