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Response of shape optimization of thin-walled curved beam and rib formation from unstable structure growth in optimization

机译:薄壁弯曲梁形状优化的响应和肋骨形成从不稳定结构生长优化

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A thin-walled curved beam is a complex structure. Sectional deformation occurs due to induced out-of-plane force when the beam is bent. Bending stiffness is significantly lowered due to this deformation. Installation of ribs to support this induced force is often an effective countermeasure to ensure stiffness. This study examined shape optimization of an I-sectional curved beam. Ribbed structures were successfully created from non-ribbed structures by adding humps to the initial structure. It was discovered that instability of the shape optimization occurs under the influence of the induced force. Here, 'instability' refers to the amplification of initial perturbations similar to buckling phenomena. In the present case, the humps grew and formed ribbed structures. The bending stiffness of the ribs was significantly improved. In addition, simple thickening of flange parts also effectively improves the bending stiffness. As these two structural improvements progress simultaneously, branching of the optimization occur. This branching depends on the given volume constraint. A parameter study targeting volume observed branching to ribbed or thickened non-ribbed structures. This instability enables a leap from a non-ribbed to a ribbed structure in the optimization.
机译:薄壁弯曲梁是复杂的结构。由于梁弯曲时诱导平面外力,发生截面变形。由于这种变形,弯曲刚度显着降低。肋骨的安装以支撑这种诱导的力量通常是有效的对策,以确保刚度。该研究检查了I分段弯曲梁的形状优化。通过向初始结构添加驼峰来成功地从非肋布结构中成功地产生罗纹结构。发现,在诱导力的影响下发生形状优化的不稳定性。这里,“不稳定”是指与屈曲现象类似的初始扰动的放大。在当前情况下,驼峰成长并形成了罗纹结构。肋骨的弯曲刚度显着提高。此外,凸缘部件的简单增厚也有效地改善了弯曲刚度。随着这两个结构改进同时进展,优化的分支发生。该分支取决于给定的音量约束。参数研究靶向体积观察到罗纹或增厚的非罗纹结构的分支。这种不稳定使得在优化中可以从非罗纹到罗纹结构中飞跃。

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