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Hierarchical optimization of the composite blade of a stratospheric airship propeller based on genetic algorithm

机译:基于遗传算法的平流层飞艇螺旋桨复合叶片的分层优化

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摘要

High-altitude propellers equipped with solar energy systems are widely adopted in stratospheric airships because of their light weight, excellent mechanical performance, and high efficiency. To optimize the composite laminated structure of the blade, a hierarchical optimization method based on genetic algorithm is carried out. Global and local layers are combined according to the structural and loading properties of the blade, and each partitioned region in the local layer is optimized independently. Combined with the finite element method, a subprogram based on the classical lamination theory is developed to simulate the stiffness matrix of the blade and obtain the deflection, weight, etc. as objects. The restricted condition, whether the structure has failed, is determined by the Tsai-Wu criterion. In addition, multiple tasks are delivered and read simultaneously by a specific program for the sake of improving computation efficiency. After verification with a case study, the stacking sequence and thickness of the blade of a stratospheric airship propeller is optimized and an ideal result is obtained.
机译:由于重量轻,机械性能优异,高效率,配备太阳能系统的高空螺旋桨在平流层飞艇中广泛采用。为了优化刀片的复合层压结构,执行基于遗传算法的分层优化方法。根据刀片的结构和装载性能组合全局和局部层,并且局部层中的每个分区区域独立优化。结合有限元方法,开发了基于经典层压理论的子程序来模拟刀片的刚度矩阵并获得偏转,重量等作为物体。限制条件,是否结构失败,由Tsai-Wu标准确定。此外,为了提高计算效率,通过特定程序同时传送和读取多个任务。在用案例研究验证之后,优化了平流层飞艇螺旋桨的刀片的堆叠序列和厚度,并获得了理想的结果。

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