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Stress recovery from one dimensional models for tapered bi-symmetric thin-walled I beams: Deficiencies in modern engineering tools and procedures

机译:锥形双对称薄壁工字梁的一维模型中的应力恢复:现代工程工具和程序的缺陷

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This paper highlights several issues of the procedures nowadays adopted for the recovery of cross-sections stress distribution within tapered thin-walled I beams. In particular, deficiencies are evident even considering bi-symmetric structural elements behaving under the assumption of plane stress. In fact, analytical results available in the literature since the first half of the past century highlight that the continuous variation of the height of a infinite long wedge induces shear stress distributions substantially different from the ones occurring in prismatic beams. Unfortunately, this peculiarity of non-prismatic beams is neglected or treated with coarse approaches by most of the modern engineering tools and procedures, leading to inaccurate descriptions (and also severe underestimations) of the real stress magnitude. After a comprehensive literature review on this specific topic, the paper compares most common stress-recovery procedures with a new, simple, and effective tool derived from a recently proposed non-prismatic planar beam model. The numerical examples reported in the paper highlight that the approaches available in the literature and widely used in practice estimate the parameters of interest for practitioners with errors bigger than 50% leading therefore to unreliable results. Conversely, the herein proposed tool leads to errors smaller than 5% in all the considered cases, paving the way to a new generation of effective tools that practitioners can use for the design of such structural elements.
机译:本文重点介绍了当今用于恢复锥形薄壁I型梁截面应力分布的若干程序问题。尤其是,即使考虑平面应力假设下的双对称结构元素,缺陷也很明显。实际上,自上个世纪上半叶以来在文献中可获得的分析结果突显出,无限长楔形物高度的连续变化引起的剪应力分布与棱镜梁中的剪切应力分布大不相同。不幸的是,大多数现代工程工具和程序都用粗略的方法忽略或处理了非棱柱形梁的这种特殊性,导致对真实应力大小的描述不准确(也严重低估了)。在对该特定主题进行全面的文献综述之后,本文将最常见的应力恢复程序与一种新的,简单且有效的工具进行了比较,该工具源自最近提出的非棱柱形平面梁模型。本文报道的数值示例突出表明,文献中可用的方法以及在实践中广泛使用的方法估计了误差大于50%的从业人员感兴趣的参数,因此导致结果不可靠。相反,在所有考虑的情况下,本文提出的工具导致的误差小于5%,这为实践者可以用来设计此类结构元件的新一代有效工具铺平了道路。

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