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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >An integrated parameter optimization system for MIMO plastic injection molding using soft computing
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An integrated parameter optimization system for MIMO plastic injection molding using soft computing

机译:使用软计算的MIMO注塑成型集成参数优化系统

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摘要

This study proposes an integrated optimization system to find out the optimal parameter settings of multi-input multi-output (MIMO) plastic injection molding (PIM) process. The system is divided into two stages. In the first stage, the Taguchi method and analysis of variance (ANOVA) are employed to perform the experimental work, calculate the signal-to-noise (S/N) ratio, and determine the initial process parameters. The back-propagation neural network (BPNN) is employed to construct an S/N ratio predictor and a quality predictor. The S/N ratio predictor and genetic algorithms (GA) are integrated to search for the first optimal parameter combination. The purpose of this stage is to reduce the process variance. In the second stage, the quality predictor is combined with particle swarm optimization (PSO) to find the final optimal parameters. The quality characteristics, product length and warpage, are dedicated to finding the optimal process parameters. After the numerical analysis, the optimal parameters can meet the lowest variance and the product quality requirements simultaneously. Experimental results show that the proposed optimization system can not only satisfy the quality specification but also improve stability of the PIM process.
机译:这项研究提出了一个集成的优化系统,以找出多输入多输出(MIMO)塑料注射成型(PIM)工艺的最佳参数设置。该系统分为两个阶段。在第一阶段,采用Taguchi方法和方差分析(ANOVA)进行实验工作,计算信噪比(S / N),并确定初始工艺参数。反向传播神经网络(BPNN)用于构造信噪比预测器和质量预测器。集成信噪比预测器和遗传算法(GA),以搜索第一个最佳参数组合。此阶段的目的是减少过程差异。在第二阶段,将质量预测器与粒子群优化(PSO)结合起来以找到最终的最佳参数。质量特性,产品长度和翘曲专门用于寻找最佳工艺参数。经过数值分析,最优参数可以同时满足最小方差和产品质量要求。实验结果表明,所提出的优化系统不仅可以满足质量指标,而且可以提高PIM工艺的稳定性。

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