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A Dynamic Data-driven Model for Predicting Strip Temperature in Continuous Annealing Line Heating Process

机译:连续退火线加热过程中带钢温度的动态数据驱动模型

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In the continuous annealing line heating process, it is hard to get an accurate predict result only by a steady state model as it is a complex, strongly time-delayed and confounding process. This study provides a method for building a dynamic model. First analyzes the mechanism of the annealing line to get the main parameters, and then use the data-driven modeling method to get a steady state model, finally combines with dynamic algorithm to establish a dynamic model. This modeling method improves the accuracy of predict result to guarantee the efficiency of enterprises.
机译:在连续退火线加热过程中,仅通过稳态模型很难获得准确的预测结果,因为它是一个复杂,时间延迟且令人困惑的过程。这项研究提供了一种建立动态模型的方法。首先分析退火线的机理,得到主要参数,然后采用数据驱动的建模方法得到稳态模型,最后结合动力学算法建立动力学模型。该建模方法提高了预测结果的准确性,从而保证了企业的效率。

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