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Online Prediction Method of Cement Clinker f-Cao Based on K-ELM

机译:基于K-ELM的水泥熟料f-Cao在线预测方法

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Online prediction of f-Cao content is of great significance for timely control of cement rotary kiln to ensure its stable operation. In this paper, an on-line prediction method of f-Cao content based on kernel extreme learning machine (K-ELM) is proposed. According to the cement process, the input and output of the K-ELM model and its time point matching relationship are determined. On this basis, considering the continuity of cement production, the sliding time window method is combined with the K-ELM prediction method to update the K-ELM model to achieve online prediction of f-Cao content. Finally, taking the production data of a cement company as an example, the online prediction method of f-Cao content was verified. The experimental results showed that the variation trend of the online predicted value of f-Cao was similar to that of the laboratory test value of f-Cao. This paper provided a certain technical basis for in-depth study of f-Cao online prediction to further realize the energy saving and quality improvement of clinker production.
机译:在线预测f-Cao含量对于及时控制水泥回转窑以确保其稳定运行具有重要意义。提出了一种基于核极限学习机(K-ELM)的f-Cao含量在线预测方法。根据胶结过程,确定了K-ELM模型的输入和输出及其时间点匹配关系。在此基础上,考虑水泥生产的连续性,将滑动时间窗方法与K-ELM预测方法结合起来,更新K-ELM模型,实现在线预测f-Cao含量。最后,以某水泥公司的生产数据为例,验证了氟钙含量的在线预测方法。实验结果表明,f-Cao在线预测值的变化趋势与f-Cao的实验室测试值相似。本文为深入研究f-Cao在线预测提供了一定的技术基础,进一步实现了熟料生产的节能和质量提升。

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