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An integrated parameter optimization system for MISO plastic injection molding

机译:MISO注塑成型的集成参数优化系统

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This paper presents the development of a parameter optimization system that integrates mold flow analysis, the Taguchi method, analysis of variance (ANOVA), back-propagation neural networks (BPNNs), genetic algorithms (GAs), and the Davidon–Fletcher–Powell (DFP) method to generate optimal process parameter settings for multiple-input single-output plastic injection molding. In the computer-aided engineering simulations, Moldex3D software was employed to determine the preliminary process parameter settings. For process parameter optimization, an L25 orthogonal array experiment was conducted to arrange the number of experimental runs. The injection time, velocity pressure switch position, packing pressure, and injection velocity were employed as process control parameters, with product weight as the target quality. The significant process parameters influencing the product weight and the signal to noise (S/N) ratio were determined using experimental data based on the ANOVA method. Experimental data from the Taguchi method were used to train and test the BPNNs. Then, the BPNN was combined with the DFP method and the GAs to determine the final optimal parameter settings. Three confirmation experiments were performed to verify the effectiveness of the proposed system. Experimental results show that the proposed system not only avoids shortcomings inherent in the commonly used Taguchi method but also produced significant quality and cost advantages.
机译:本文介绍了参数优化系统的开发,该系统集成了模具流动分析,Taguchi方法,方差分析(ANOVA),反向传播神经网络(BPNN),遗传算法(GA)和Davidon–Fletcher-Powell( DFP)方法可为多输入单输出塑料注射成型生成最佳工艺参数设置。在计算机辅助工程仿真中,使用Moldex3D软件确定初步的工艺参数设置。为了优化工艺参数,进行了L 25 正交阵列实验以安排实验次数。将注射时间,速度压力开关位置,填充压力和注射速度用作过程控制参数,以产品重量为目标质量。使用基于ANOVA方法的实验数据确定了影响产品重量和信噪比(S / N)的重要工艺参数。 Taguchi方法的实验数据用于训练和测试BPNN。然后,将BPNN与DFP方法和GA相结合,以确定最终的最佳参数设置。进行了三个确认实验,以验证所提出系统的有效性。实验结果表明,提出的系统不仅避免了常用的田口方法固有的缺点,而且在质量和成本上都具有明显的优势。

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