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首页> 外文期刊>Industrial Informatics, IEEE Transactions on >Dynamic Prediction Models and Optimization of Polyacrylonitrile (PAN) Stabilization Processes for Production of Carbon Fiber
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Dynamic Prediction Models and Optimization of Polyacrylonitrile (PAN) Stabilization Processes for Production of Carbon Fiber

机译:碳纤维生产聚丙烯腈(PAN)稳定工艺的动态预测模型和优化

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摘要

Thermal stabilization process of polyacrylonitrile (PAN) is the slowest and the most energy-consuming step in carbon fiber production. As such, in industrial production of carbon fiber, this step is considered as a major bottleneck in the whole process. Stabilization process parameters are usually many in number and highly constrained, leading to high uncertainty. The goal of this paper is to study and analyze the carbon fiber thermal stabilization process through presenting several effective dynamic models for the prediction of the process. The key point with using dynamic models is that using an evolutionary search technique, the heat of reaction can be optimized. The employed components of the study are Levenberg–Marquardt algorithm (LMA)-neural network (LMA-NN), Gauss–Newton (GN)-curve fitting, Taylor polynomial method, and a genetic algorithm. The results show that the procedure can effectively optimize a given PAN fiber heat of reaction based on determining the proper values of heating ramp and temperature.
机译:聚丙烯腈(PAN)的热稳定过程是碳纤维生产中最慢,最耗能的步骤。这样,在碳纤维的工业生产中,该步骤被认为是整个过程中的主要瓶颈。稳定化工艺参数通常数量众多且受到严格限制,从而导致高度不确定性。本文的目的是通过提出几种有效的动力学模型来预测碳纤维的过程,以研究和分析碳纤维的热稳定过程。使用动态模型的关键是使用进化搜索技术,可以优化反应热。该研究采用的成分是Levenberg-Marquardt算法(LMA)-神经网络(LMA-NN),Gauss-Newton(GN)曲线拟合,泰勒多项式方法和遗传算法。结果表明,该程序可以通过确定加热斜率和温度的适当值来有效地优化给定PAN纤维的反应热。

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