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Maximization of Eigenfrequency Gaps in a Composite Cylindrical Shell Using Genetic Algorithms and Neural Networks

机译:基于遗传算法和神经网络的复合圆柱壳中的特征频率范围最大化

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This paper presents a novel method for the maximization of eigenfrequency gaps around external excitation frequencies by stacking sequence optimization in laminated structures. The proposed procedure enables the creation of an array of suggested lamination angles to avoid resonance for each excitation frequency within the considered range. The proposed optimization algorithm, which involves genetic algorithms, artificial neural networks, and iterative retraining of the networks using data obtained from tentative optimization loops, is accurate, robust, and significantly faster than typical genetic algorithm optimization in which the objective function values are calculated using the finite element method. The combined genetic algorithm–neural network procedure was successfully applied to problems related to the avoidance of vibration resonance, which is a major concern for every structure subjected to periodic external excitations. The presented examples illustrate a combined approach to avoiding resonance through the maximization of a frequency gap around external excitation frequencies complemented by the maximization of the fundamental natural frequency. The necessary changes in natural frequencies are caused only by appropriate changes in the lamination angles. The investigated structures are thin-walled, laminated one- or three-segment shells with different boundary conditions.
机译:本文通过层压结构中的序列优化堆叠序列优化,提出了一种新的方法,用于通过堆叠序列优化来最大限度地围绕外部励磁频率围绕外部激发频率。所提出的程序使得能够创建一个建议的层叠角度,以避免在考虑范围内的每个激励频率的共振。所提出的优化算法,涉及使用从初始优化环路获得的数据的遗传算法,人工神经网络和网络迭代再检测,是比典型的遗传算法优化的准确,稳健,并且明显快于,其中使用目标函数值有限元法。合并的遗传算法 - 神经网络程序成功地应用于与避免振动共振相关的问题,这是对周期性外部激励的每个结构的主要问题。所呈现的实施例说明了通过通过基本自然频率的最大化互补的外部激励频率周围的频率间隙的最大化来避免谐振的组合方法。仅通过层压角的适当变化来引起自然频率的必要变化。调查的结构是薄壁的,层压的单次或三段壳,具有不同的边界条件。

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