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Model Predictive Synchronous Control of Barrel Temperature for Injection Molding Machine Based on Diagonal Recurrent Neural Networks

机译:基于对角递归神经网络的注塑机机筒温度的模型预测同步控制。

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摘要

A nonlinear model predictive control (NMPC) based on diagonal recurrent neural network (DRNN) was used to control multisection barrel melt temperatures of an injection molding machine. In this method a DRNN was used to construct a nonlinear predictive model of barrel melt temperatures and genetic algorithm (GA) was used as a rolling optimization tool. Simulations and experimental results show that this method not only guarantees the accuracy of temperature control of barrel melt temperatures but also improves synchronization of barrel temperature control and it improves the consistency of the barrel melt polymer and the quality of the molded parts.
机译:基于对角递归神经网络(DRNN)的非线性模型预测控制(NMPC)用于控制注塑机的多段料筒熔融温度。在这种方法中,DRNN用于构建桶状熔体温度的非线性预测模型,遗传算法(GA)作为滚动优化工具。仿真和实验结果表明,该方法不仅保证了料筒温度的精确控制,而且提高了料筒温度控制的同步性,提高了料筒聚合物的稠度和成型件的质量。

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