椭圆度对充液薄壁锥形罐屈曲行为的影响

Girmay Mengesha Azanaw
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引用次数: 0

摘要

通过综合数值模拟研究了椭圆度对充液薄壁锥形罐屈曲行为的影响。锥形储罐的结构稳定性在各种工程应用中具有至关重要的意义,例如储罐和航天结构。然而,椭圆形的存在,其特征是偏离完美的圆形,可以显著影响这些储罐的结构响应和完整性。为了探讨椭圆度的影响,采用了有限元分析(FEA)方法,考虑了油箱几何形状中不同的椭圆度水平。进行了全面的参数研究,改变了关键参数,如罐尺寸,材料特性和液体填充水平。通过计算临界屈曲载荷和相应的变形模态来评估储罐的屈曲行为。数值模拟结果表明,即使是较小的椭圆度水平也会大大降低锥形储罐的屈曲承载能力。随着椭圆度的增加,屈曲发生在较低的载荷下,导致结构过早破坏。液体填充的存在进一步加剧了屈曲现象,液体晃动效应放大了结构响应。研究了不同材料对圆锥形储罐在椭圆作用下屈曲行为的影响。研究发现,材料的刚度和屈服强度是决定临界屈曲载荷和模态振型的关键因素。此外,还探讨了液体填充水平的影响,表明较高的填充水平增加了屈曲脆弱性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Ovality on the Buckling Behavior of Thin-Walled Liquid-Filled Conical Tanks
This study investigates the influence of ovality on the buckling behavior of thin-walled liquid-filled conical tanks through comprehensive numerical simulations. The structural stability of conical tanks is of paramount importance in various engineering applications, such as storage vessels and aerospace structures. However, the presence of ovality, characterized by deviations from perfect circularity, can significantly affect the structural response and integrity of these tanks. To explore the effects of ovality, a finite element analysis (FEA) approach is employed, considering various ovality levels in the tank geometry. A comprehensive parametric study is conducted, varying key parameters such as tank dimensions, material properties, and liquid filling levels. The buckling behavior of the tanks is assessed by examining critical buckling loads and corresponding deformation modes. Results from the numerical simulations reveal that even small levels of ovality can substantially reduce the buckling load capacity of conical tanks. As ovality increases, the onset of buckling occurs at lower applied loads, leading to premature structural failure. The presence of liquid filling further exacerbates the buckling phenomenon, with the liquid sloshing effect amplifying the structural response. The study also investigates the influence of different materials on the buckling behavior of conical tanks subjected to ovality. It is found that the material stiffness and yield strength play a crucial role in determining the critical buckling load and mode shape. Furthermore, the effect of liquid fill level is explored, demonstrating that higher fill levels increase the vulnerability to buckling.
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