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Classification of blast furnace internal state based on FLS and its application in furnace temperature prediction

机译:基于FLS的高炉内部状态分类及其在炉温预测中的应用

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The real-time and accurate prediction of the molten iron silicon content of the blast furnace plays an important role in regulating the temperature of the blast furnace and stabilizing the furnace condition. When the time is large, the accuracy and credibility of the forecast results decrease rapidly, which is not conducive to on-site operators to carry out production operations according to the forecast results. To this end, this paper adds a state variable to each piece of data through the flexible least square parameter estimation method, and selects the training set in a state similar to the test sample. This makes the selection of training data more accurate and reliable. Application examples show that the method proposed in this paper improves the accuracy of silicon content prediction results and has good guiding significance for actual production operations.
机译:高炉熔融铁硅含量的实时和精确预测在调节高炉温度并稳定炉状况方面起着重要作用。 当时间大时,预测结果的准确性和可信度迅速下降,这不利于现场运营商根据预测结果开展生产操作。 为此,本文通过灵活的最小方形参数估计方法向每条数据添加状态变量,并选择与测试样本类似的状态下设置的训练。 这使得培训数据的选择更准确可靠。 应用方示例表明本文提出的该方法提高了硅含量预测结果的准确性,对实际生产操作具有良好的指导意义。

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