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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Soft-sensor for copper extraction process in cobalt hydrometallurgy based on adaptive hybrid model
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Soft-sensor for copper extraction process in cobalt hydrometallurgy based on adaptive hybrid model

机译:基于自适应混合模型的钴湿法炼铜过程软传感器

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摘要

In the process of copper extraction in cobalt hydrometallurgy, the copper concentration of raffmate solution needs to be monitored and controlled simultaneously. It is difficult to measure such concentration online by existing instruments and sensors. Soft sensor technique has been became an online supplement measurement for process monitoring and control. In this paper, an adaptive hybrid modeling method for copper extraction process is proposed. The proposed model is composed of simplified first principle model and block-wise recursive PLS model. The former based on material balancing calculation with some assumptions is used to describe the extraction process in general; and the latter is constructed to compensate the unmodeled characteristic and deal with the time-variant feature. A model rectification strategy is also employed to correct the final output and increase the prediction accuracy. The proposed model has been used in a cobalt hydrometallurgy pilot plant, and the prediction results indicate that the adaptive hybrid model is more precise and efficient than the other conventional models.
机译:在钴湿法冶金中提取铜的过程中,需要同时监控和控制萃余液中铜的浓度。现有的仪器和传感器很难在线测量这种浓度。软传感器技术已成为用于过程监视和控制的在线补充测量。本文提出了一种自适应的铜萃取过程混合建模方法。该模型由简化的第一原理模型和逐块递归PLS模型组成。前者基于物料平衡计算并带有一些假设,通常用于描述萃取过程。后者的构造是为了补偿未建模的特征并处理时变特征。还采用模型校正策略来校正最终输出并提高预测精度。所提出的模型已经在钴湿法冶炼中试厂中使用,预测结果表明,自适应混合模型比其他常规模型更为精确和有效。

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