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A neural network model to determine the plate width set-up value in a hot plate mill

机译:一种神经网络模型,以确定热板磨机中的板宽设置值

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Performance of the process reducing the slab width in hot plate mill called edging is critical to produce rolled products with a desired dimension, which otherwise increase the yield loss caused by trimming. This process, therefore, requires a stringent width control performance. In this paper, an edger set-up model generating the desired slab width required for the control is proposed based upon the neural network approach. This neural network model accounts for variation of the dimension of incoming slabs to predict the preset value of the width as accurately as possible. A series of simulations were conducted to evaluate the performance of the neural network estimator for a variety of operating conditions needed for producing rolled products of various dimensions. The results show that the proposed model can estimate the preset value of the slab width with good accuracy, thereby enhancing the dimensional accuracy of rolled products. The estimation performance is discussed in detail for various process operation conditions.
机译:减少称为边缘的热板磨机中的工艺的性能对于生产具有所需尺寸的轧制产品至关重要,否则通过修剪引起的屈服损失。因此,此过程需要严格的宽度控制性能。在本文中,基于神经网络方法提出了一种基于神经网络方法所需的所需板坯宽度的边缘设置模型。该神经网络模型考虑了进入板的尺寸的变化,以尽可能准确地预测宽度的预设值。进行了一系列模拟以评估神经网络估算器的性能,用于生产各种尺寸的轧制产品所需的各种操作条件。结果表明,所提出的模型可以以良好的精度估计板坯宽度的预设值,从而提高轧制产品的尺寸精度。为各种过程操作条件详细讨论估计性能。

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