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Modeling and Optimizing the Composite Prepreg Tape Winding Process Based on Grey Relational Analysis Coupled with BP Neural Network and Bat Algorithm

机译:基于灰关联分析结合BP神经网络和Bat算法的复合预浸料缠绕工艺建模与优化。

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摘要

AbstractAs a significant way to manufacture revolving body composite, the composite prepreg tape winding technology is widely applied to the domain of aerospace motor manufacture. Processing parameters, including heating temperature, tape tension, roller pressure, and winding velocity, have considerable effects on the void content and tensile strength of winding products. This paper was devoted to studying the influence of process parameters on the performances of winding products including both void content and tensile strength and trying to provide the optimal parameters combination for the objectives of lower void content and higher tensile strength. In the experiments, tensile strength and void content were selected as the mechanical property and physical performance of winding products to be tested, respectively. An integrated approach by uniting the Grey relational analysis, backpropagation neural network, and bat algorithm was presented to search the optimal technology parameters for composite tape winding process. Then, the composite tape winding process model was provided by backpropagation neural network utilizing the results of Grey relational analysis. According to the bat algorithm, the optimal parameter combination was heating temperature with 73.8 °C, tape tension with 291.2 N, roller pressure with 1804.1 N, and winding velocity with 9.1 rpm. The value of tensile strength increased from 1215.31 to 1329.62 MPa. Meanwhile, the value of void content decreased from 0.15 to 0.137%. At last, the developed method was verified to be useful for optimizing the composite tape winding process.
机译:摘要复合预浸料带缠绕技术是制造旋转体复合材料的一种重要方法,已广泛应用于航空航天电动机的制造领域。包括加热温度,胶带张力,辊压和卷绕速度在内的加工参数对卷绕产品的空隙率和拉伸强度有很大影响。本文致力于研究工艺参数对绕组产品性能的影响,包括空隙率和抗拉强度,并试图为降低空隙率和提高抗拉强度提供最佳的参数组合。在实验中,分别选择拉伸强度和空隙率作为要测试的绕组产品的机械性能和物理性能。提出了一种将灰色关联分析,反向传播神经网络和蝙蝠算法相结合的综合方法,以寻找复合带缠绕工艺的最佳工艺参数。然后,利用灰色关联分析的结果,通过反向传播神经网络提供复合带绕制过程模型。根据bat算法,最佳参数组合是加热温度为73.8 C,带张力为291.2 N,辊压为1804.1 N,卷绕速度为9.1 rpm。拉伸强度值从1215.31增加到1329.62 MPa。同时,空隙率从0.15降低到0.137%。最后,验证了所开发的方法对于优化复合带缠绕工艺是有用的。

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