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A genetic algorithm optimization of ring-stiffened cylindrical shells for axial and radial buckling loads

机译:轴向和径向屈曲载荷的加筋圆柱壳遗传算法优化

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In this research, the general axial and radial buckling optimization of ring-stiffened cylindrical shells is implemented by the genetic algorithm (GA). The stiffened shell is subjected to four constraints including the fundamental frequency, the structural weight, the axial buckling load, and the radial buckling load. In addition, six design variables including shell thickness, number of stiffeners, stiffeners width and height, stiffeners eccentricity distribution order, and stiffeners spacing distribution order are considered. In analytical solution, the Ritz method is applied and stiffeners are treated as discrete elements. The effect of the weighting coefficients of the objective functions on the optimum solution is studied. The results show that optimized stiffening a cylindrical shell leads to a lower structural weight, higher natural frequencies, and larger axial and radial buckling loads, simultaneously. In addition, the upper and lower bounds of the design variables influence the optimum results considerably. It is also found that the distributions of eccentricity and spacing of the stiffeners influence the magnitudes of the axial and radial buckling loads considerably.
机译:在这项研究中,通过遗传算法(GA)实现了环形加筋圆柱壳的总体轴向和径向屈曲优化。加劲壳受到四个约束,包括基本频率,结构重量,轴向屈曲载荷和径向屈曲载荷。另外,考虑了六个设计变量,包括壳体厚度,加劲肋数量,加劲肋宽度和高度,加劲肋偏心距分布顺序和加劲肋间距分布顺序。在解析解决方案中,应用了Ritz方法,并且将加劲肋视为离散元素。研究了目标函数的加权系数对最优解的影响。结果表明,优化的圆柱壳加固可同时降低结构重量,提高固有频率以及增大轴向和径向屈曲载荷。此外,设计变量的上限和下限会显着影响最佳结果。还发现,加劲肋的偏心距和间距的分布在很大程度上影响了轴向和径向屈曲载荷的大小。

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