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首页> 外文期刊>Thermal science >SHORT-TERM AND LONG-TERM THERMAL PREDICTION OF A WALKING BEAM FURNACE USING NEURO-FUZZY TECHNIQUES
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SHORT-TERM AND LONG-TERM THERMAL PREDICTION OF A WALKING BEAM FURNACE USING NEURO-FUZZY TECHNIQUES

机译:基于神经模糊技术的步行梁炉的短期和长期热预测

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摘要

The walking beam furnace (WBF) is one of the most prominent process plants often met in an alloy steel production factory and characterized by high non-linearity, strong coupling, time delay, large time-constant and time variation in its parameter set and structure. From another viewpoint, the WBF is a distributed-parameter process in which the distribution of temperature is not uniform. Hence, this process plant has complicated non-linear dynamic equations that have not worked out yet. In this paper, we propose one-step non-linear predictive model for a real WBF using non-linear black-box sub-system identification based on locally linear neuro-fuzzy (LLNF) model. Furthermore, a multi-step predictive model with a precise long prediction horizon (i.e., ninety seconds ahead), developed with application of the sequential one-step predictive models, is also presented for the first time. The locally linear model tree (LOLIMOT) which is a progressive tree-based algorithm trains these models. Comparing the performance of the one-step LLNF predictive models with their associated models obtained through least squares error (LSE) solution proves that all operating zones of the WBF are of non-linear sub-systems. The recorded data from Iran Alloy Steel factory is utilized for identification and evaluation of the proposed neuro-fuzzy predictive models of the WBF process.
机译:步进梁式炉(WBF)是合金钢生产厂中经常遇到的最著名的工艺工厂之一,其特征在于参数集和结构具有非线性高,耦合强,时延大,时间常数大和随时间变化的特点。 。从另一个角度来看,WBF是温度分布不均匀的分布参数过程。因此,该过程工厂具有尚未解决的复杂非线性动力学方程。在本文中,我们基于局部线性神经模糊(LLNF)模型,使用非线性黑箱子系统识别,为真实WBF提出了一个单步非线性预测模型。此外,还首次提出了应用顺序单步预测模型开发的,具有精确长预测范围(即提前90秒)的多步预测模型。局部线性模型树(LOLIMOT)是一种基于树的渐进算法,可以训练这些模型。将单步LLNF预测模型的性能与通过最小二乘误差(LSE)解决方案获得的相关模型进行比较,可以证明WBF的所有操作区域都是非线性子系统。来自伊朗合金钢厂的记录数据用于鉴定和评估WBF过程的拟议神经模糊预测模型。

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