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The Precise Prediction of Rolling Forces in Heavy Plate Rolling Based on Inverse Modeling Techniques

机译:基于逆建模技术的厚板轧制中轧制力的精确预测

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The industry scale production of heavy steel plates is performed in plate mills using reversing mill stands and roll schedules with 30 or more passes. Ideal pass scheduling is dependent on a precise prediction of the roll force in each pass. To obtain these forces process models based on the slab theory together with semi-empirical material models are most frequently used. The material parameters necessary to calibrate the models for a specific steel grade are conventionally generated on a lab scale via time-consuming and expensive compression tests. This paper will introduce a concept that allows obtaining the material model parameters directly from the rolling process on an industrial scale by an inverse modeling technique. In this context, the parameters of the material model are adjusted according to the current offset between measured and calculated roll forces. The adjustment is enabled by a non-linear optimization that aims for a minimum deviation between measured and calculated roll forces for each pass. Several results gathered in an optimization run with industrial data of about 2650 produced plates are presented. The concurrence between measurement and prediction using the optimal parameters is in detail shown for three different schedules. In summary, inverse modeling seems to allow utilizing data of past rolling processes to determine material model parameters with high accuracy.
机译:重型钢板的工业规模生产是在板式轧机中使用可逆轧机机架和30道次或更多轧制时间表进行的。理想的道次调度取决于每次道次中轧制力的精确预测。为了获得这些力,最常使用基于平板理论的过程模型以及半经验材料模型。通常,在实验室规模上通过耗时且昂贵的压缩测试来生成校准特定钢种模型所需的材料参数。本文将介绍一个概念,该概念允许通过逆建模技术直接从工业规模的轧制过程中获得材料模型参数。在这种情况下,材料模型的参数根据测量和计算的轧制力之间的当前偏差进行调整。调整是通过非线性优化实现的,该非线性优化的目的是使每次通过的轧制力与测量值之间的最小偏差。展示了在优化运行中收集的几个结果,这些结果使用了大约2650个生产的板的工业数据。对于三个不同的时间表,详细显示了使用最佳参数进行测量和预测之间的并发性。总之,逆建模似乎允许利用过去轧制过程的数据来高精度确定材料模型参数。

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