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首页> 外文期刊>The Chinese journal of mechanics >APPLICATION OF NEURAL NETWORK AND GENETIC ALGORITHM TO THE OPTIMUM DESIGN OF PERFORATED TUBE MUFFLERS
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APPLICATION OF NEURAL NETWORK AND GENETIC ALGORITHM TO THE OPTIMUM DESIGN OF PERFORATED TUBE MUFFLERS

机译:神经网络和遗传算法在穿孔管制造器优化设计中的应用

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摘要

Research on new techniques of perforated silencers has been well addressed. However, the research work on shape optimization for a volume-constrained silencer within a constrained machine room is rare. Therefore, the optimum design of mufflers becomes an essential issue. In this paper, to simplify the optimum process, a simplified mathematical model of the muffler is constructed with a neural network using a series of input design data (muffle dimensions) and output data (theoretical sound transmission loss) obtained by a theoretical mathematical model (TMM). To assess the optimal mufflers, the neural network model (NNM) is used as an objective function in conjunction with a genetic algorithm (GA). Moreover, the numerical cases of sound elimination with respect to pure tones (500, 1000, 2000Hz) are exemplified and discussed.rnBefore the GA operation can be carried out, the accuracy of the TMM is checked by Crocker's experimental data. In addition, both the TMM and NNM are compared. It is found that the TMM and the experimental data are in agreement. Moreover, the TMM and NNM confirm.rnThe results reveal that the maximum value of the sound transmission loss (STL) can be optimally obtained at the desired frequencies. Consequently, it is obvious that the optimum algorithm proposed in this study can provide an efficient way to develop optimal silencers.
机译:穿孔消音器新技术的研究已经得到很好的解决。然而,在受限的机房内对体积受限的消音器进行形状优化的研究很少。因此,消声器的优化设计成为必不可少的问题。在本文中,为简化优化过程,使用神经网络构造消声器的简化数学模型,该模型使用一系列输入的设计数据(消声器尺寸)和输出数据(通过理论数学模型( TMM)。为了评估最佳消声器,将神经网络模型(NNM)与遗传算法(GA)结合用作目标函数。此外,以纯音(500、1000、2000Hz)消音的数值实例为例进行了讨论。在可以进行遗传算法操作之前,利用克罗克的实验数据来检验TMM的准确性。此外,将TMM和NNM进行了比较。发现TMM与实验数据吻合。此外,TMM和NNM证实了这一结果。结果表明,可以在所需频率下最佳地获得声传输损耗(STL)的最大值。因此,很明显,本研究中提出的最佳算法可以为开发最佳消音器提供有效的方法。

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