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Enriched beam finite element models with torsion and shear warping for the analysis of thin-walled structures

机译:富含梁有限元模型,具有扭转和剪切翘曲,用于分析薄壁结构

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This paper presents three beam Finite Element (FE) formulations developed for the analysis of thin-walled structures. These account for out-of-plane cross-section warping by removing the classical rigid body cross-section hypothesis and capture the interaction of axial/bending stress components with shear and torsion.The beam FE models rely on different kinematic assumptions to describe out-of-plane cross-section deformations. Indeed, warping displacement field is interpolated in the element volume according to different approaches, with increasing level of accuracy and detail. First two models adopt a coarse warping description, where warping displacement field is defined as the linear combination of assumed warping profiles and unknown kinematic parameters. In the first model, these are considered as equal to the generalized crosssection torsional curvature and shear strains and a classical displacement-based formulation is adopted to derive the element governing equations. In the second model, warping parameters are assumed as independent kinematic quantities and a mixed approach is considered to derive the FE formulation. Third model, also relying on a mixed formulation, independently interpolates warping by introducing additional degrees of freedom on the cross-section plane, thus, resulting in a richer description of the out-of-plane deformations. This latter is also adopted to propose a numerical procedure for the warping profile evaluation of thin-walled beams subjected to torsional and shear forces, for general cross-section geometry.The efficiency and accuracy of the proposed FE formulations are validated by simulating the response of thin-walled structures under torsion and coupled torsion/shear actions and the influence of the kinematic assumptions characterizing each formulation is discussed.
机译:本文介绍了三个梁有限元(Fe)制剂,用于分析薄壁结构。这些通过去除古典刚体横截面假设来进行平面外横截面翘曲,并捕获剪切和扭转的轴向/弯曲应力分量的相互作用。梁FE模型依赖于不同的运动假设来描述 - 平面横截面变形。实际上,翘曲位移场根据不同的方法在元素体积中插入,提高精度和细节水平。前两种模型采用粗糙的翘曲描述,其中翘曲位移场被定义为假定的翘曲简档和未知运动参数的线性组合。在第一模型中,这些被认为是等于广义的横截面曲率曲率和剪切菌株,并且采用经典的位移的制剂来导出元件控制方程。在第二模型中,假设翘曲参数作为独立运动量,并且认为混合方法导出Fe配方。第三型号,也依赖于混合制剂,通过在横截面上引入额外的自由度来独立地插入翘曲,从而导致平面外变形的更丰富的描述。对于一般横截面几何形状,还采用后者提出了对经受扭转和剪切力的薄壁梁的翘曲剖面评估的数值程序。通过模拟响应来验证所提出的Fe配方的效率和准确性讨论了薄壁结构,围绕扭转扭转/剪切动作以及表征每个配方的运动假设的影响。

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