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Instability of thin steel cylindrical shells under bending

机译:薄钢圆柱壳弯曲时的不稳定性

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Bending of steel cylindrical shells is generally characterized by the interaction among ovalization, bifurcation, and material plasticity when the slenderness of the shell is relatively low. It is a nonlinear phenomenon, which is dictated by buckling-sensitivity of the shells to imperfections. The behavior of cylindrical shells under bending and its imperfection sensitivity have not been yet fully understood for all the range of dimensions. This study investigates the buckling behavior and imperfection sensitivity of thin steel cylindrical shells under pure bending, focusing on a specific range of slendernesses, which are commonly found in energy structures such as tall wind turbine towers (60 R/t 120). The inelastic localized buckling instability is studied using computational methods to assess the critical load of the thin steel cylindrical shells. One of the main goals is to predictively describe the buckling sensitivity of the shells and to the provide relationships between the knockdown factor and geometric imperfections. In addition, an extensive study has been done to investigate the impact of steel strain-hardening models on the bending behavior. Four types of plasticity models are utilized to observe the effect of strain-hardening models on the bending behavior and imperfection sensitivity of the thin steel cylindrical shells: a bilinear and three versions of the Ramberg-Osgood plasticity model.
机译:当圆柱体的细长度相对较低时,圆柱形圆柱体的弯曲通常以椭圆化,分叉和材料可塑性之间的相互作用为特征。这是一种非线性现象,由壳对缺陷的屈曲敏感性决定。在所有尺寸范围内,圆柱壳在弯曲下的行为及其不完善的灵敏度尚未得到完全了解。这项研究研究了薄钢圆柱壳在纯弯曲下的屈曲行为和不完美敏感性,重点研究了细长的特定范围,细长的范围通常在高风能涡轮机塔架(60

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