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Application of Artificial Neural Networks in Design of Steel Production Path

机译:人工神经网络在钢铁生产路径设计中的应用

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摘要

Artificial neural networks (ANNs) are employed as an alternative to physical modeling for calculation of the relations between the production path process parameters (melting of scrap steel and alloying, continuous casting, hydrogen removal, reheating, rolling, and cooling on a cooling bed) and the final product mechanical properties (elongation, tensile strength, yield stress, hardness after rolling, necking) of steel semi products. They provide a much faster technique of response evaluation complementary to physical modeling. The Store Steel company process path for production of steel bars is used as an example for demonstrating the approach. The applied ANN is of a multilayer feedforward type with sigmoid activation function and supervised learning. The entire set of 123 process parameters has been reduced to 34 influential ones and 1879 data sets from the production line have been used for learning. The results of parametric studies performed on the ANN based model seem consistent with the expectations based on industrial experiences. However, further improvements in data acquisition and analytical procedures are envisaged in order to obtain a methodology, reliable enough for use in the everyday industrial practice. The methodology seems to be for the first time applied in the through process modeling of steel production.
机译:人工神经网络(ANN)被用作物理建模的替代方法,用于计算生产路径过程参数之间的关系(废钢与合金的熔化,连续铸造,除氢,再加热,轧制和冷却床上的冷却)钢半成品的最终产品机械性能(伸长率,拉伸强度,屈服应力,轧制后硬度,缩颈)。它们提供了比物理建模更快速的响应评估技术。以Store Steel公司生产钢筋的过程路径为例来说明该方法。所应用的人工神经网络为多层前馈型,具有S型激活功能和监督学习。整个123个过程参数集已减少为34个有影响力的参数,并且已使用生产线中的1879个数据集进行学习。在基于ANN的模型上进行的参数研究的结果似乎与基于行业经验的预期一致。然而,为了获得一种足够可靠的方法以用于日常工业实践,设想了数据采集和分析程序的进一步改进。该方法似乎首次应用于钢铁生产的全过程建模。

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