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A novel analytical-artificial neural network model to improve efficiency of high pressure descaling nozzles in hot strip rolling of steels

机译:一种新型的分析-人工神经网络模型,可提高钢热轧中高压除鳞喷嘴的效率

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摘要

Hot strip mills use hydraulic descaling to remove oxide scales from steel strip formed after the reheat furnace and during hot rolling. In the present work, a novel analytical-artificial neural network (AANN) model was developed to improve the efficiency of high pressure (HP) hydraulic descaling operation using flat spray nozzles. The AANN model is able to analytically compute the spray force and depth and to estimate the spray impact using an artificial neural network approach. The combined model was trained based on the industrial data from the hot strip rolling mills of Mobarakeh Steel Complex. The spray angle, spray pressure, vertical spray height and water flowrate were all considered as the main input parameters of the HP descaling operation. The AANN model can predict the spray force, impact and depth under any given descaling condition. A sensitivity analysis was carried out using the combined model. It is shown that, among all process parameters, the spray angle followed by the spray height are the most important parameters affecting the spray impact. The model developed can be used as a proper tool to improve the efficiency of the descaling system in terms of achieving the highest spray impact under any process condition.
机译:热轧机使用水力除氧化皮去除再热炉后和热轧过程中形成的钢带上的氧化皮。在当前的工作中,开发了一种新颖的分析-人工神经网络(AANN)模型,以提高使用扁平喷嘴的高压(HP)液压除垢操作的效率。 AANN模型能够使用人工神经网络方法来分析计算喷射力和深度,并估计喷射冲击。基于来自Mobarakeh钢厂的热轧机的工业数据对组合模型进行了训练。喷雾角度,喷雾压力,垂直喷雾高度和水流量均被视为高压除垢操作的主要输入参数。 AANN模型可以预测在任何给定的除垢条件下的喷雾力,冲击力和深度。使用组合模型进行了敏感性分析。结果表明,在所有工艺参数中,喷雾角度和喷雾高度是影响喷雾冲击的最重要参数。所开发的模型可以用作在任何工艺条件下实现最大喷雾冲击方面提高除垢系统效率的合适工具。

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