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首页> 外文期刊>Journal of Chemical Engineering of Japan >Prediction of Molten Steel Temperature in Steel Making Process with Uncertainty by Integrating Gray-Box Model and Bootstrap Filter
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Prediction of Molten Steel Temperature in Steel Making Process with Uncertainty by Integrating Gray-Box Model and Bootstrap Filter

机译:灰箱模型与Bootstrap过滤器集成在不确定的炼钢过程中钢水温度的预测

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Stable operation of a continuous casting process requires precise control of molten steel temperature in a tundish (TD temp), which is a container used to feed molten steel into an ingot mold. Since TD temp is implicitly controlled by adjusting molten steel temperature in the preceding secondary refining process (RH temp), a model relating TD temp with RH temp is required. This research proposes a procedure to predict the probability distribution of TD temp by integrating a gray-box model and a bootstrap filter to cope with uncertainties of the process. The derived probability distribution is used not only to predict TD temp but also to evaluate the reliability of prediction. The proposed method was validated through its application to real operation data at a steel work, and it was confirmed that the developed model satisfied the requirements for its industrial application.
机译:连续铸造过程的稳定运行需要精确控制中间包(TD temp)中的钢水温度,该中间包是用于将钢水喂入铸锭模具的容器。由于在先前的二次精炼工序(RH temp)中通过调整钢水温度来隐式地控制TD temp,因此需要将TD temp与RH temp关联的模型。这项研究提出了一种程序,通过集成灰箱模型和自举滤波器来预测TD温度的概率分布,以应对过程的不确定性。导出的概率分布不仅用于预测TD温度,还用于评估预测的可靠性。通过将该方法应用于钢铁厂的实际运行数据进行了验证,证实了所开发的模型满足其工业应用的要求。

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