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Numerical and experimental investigations of the response of aluminum cylinders with a cutout subject to axial compression

机译:切口对铝制圆柱筒轴向压缩响应的数值和实验研究

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Understanding how a cutout influences the load bearing capacity and buckling behavior of a cylindrical shell is critical in the design of structural components used in automobiles, aircrafts, and marine applications. Numerical simulation and analysis of moderately thick and thin unstiffened aluminum cylindrical shells (D/t=45, 450 and L/D=2, 5, 10), having a square cutout, subjected to axial compression were systematically carried out in this paper. The investigation examined the influence of the cutout size, cutout location, and the shell aspect ratio (L/D) on the prebuckling, buckling, and postbuckling responses of the cylindrical shells. An experimental investigation on the moderately thick-walled shells was also carried out. A good correlation was observed between the results obtained from the finite element simulation and the experiments. Furthermore, empirical equations, in the form of a 'buckling load reduction factor' were developed using the least square regression method. These simple equations could be used to predict the buckling capacities of several specific types of cylindrical shells with a cutout.
机译:在汽车,飞机和船舶应用中使用的结构部件的设计中,了解切口如何影响圆柱壳的承载能力和屈曲行为至关重要。本文系统地对具有方形切口的中厚,薄的未加硬铝质圆柱壳(D / t = 45、450和L / D = 2、5、10)进行了轴向模拟,并进行了数值模拟和分析。研究调查了切口尺寸,切口位置和壳长宽比(L / D)对圆柱壳的预屈曲,屈曲和后屈曲响应的影响。还对中厚壁壳进行了实验研究。从有限元模拟获得的结果与实验之间观察到良好的相关性。此外,使用最小二乘回归法建立了以“屈曲载荷减小因子”形式的经验方程。这些简单的方程式可用于预测带有切口的几种特定类型的圆柱壳的屈曲能力。

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