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An IsaMill? Soft Sensor based on Random Forests and Principal Component Analysis

机译:艾萨米尔(IsaMill)?基于随机森林和主成分分析的软传感器

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摘要

Online measurement of particle size is vital to the development of advanced control systems for comminution processes. Horizontal stirred mills, such as the IsaMill, are designed for more efficient ultrafine grinding and have made significant inroads in the mineral processing industries since their introduction more than a decade ago. Despite their energy efficiency, significant improvement is possible via more efficient control of these mills. Advanced control generally requires online information on the key performance variables of the mill. In this regard, measurement of the particle size in the mill is problematic. However, this problem can be addressed by use of soft sensors, whereby the particle size can be estimated from the measurements of other process variables. In this investigation, such a soft sensor is developed for online estimation of particle size on an industrial IsaMill in Western Australia. The sensor consists of a random forest model that uses operational variables measured online as predictors to estimate the P 80 particle size of the mill. Principal component analysis is used in conjunction with the random forest to enable it to assess the similarity of new process measurements to the data in its training data base. When the new data exceed a Hotelling’s T 2 or a prediction error or Q-index threshold, recalibration of the model is automatically performed.
机译:在线测量粒度对开发用于粉碎过程的高级控制系统至关重要。卧式搅拌机(例如IsaMill)专为更高效的超细研磨而设计,自从十多年前问世以来,它们已经在矿物加工行业取得了重大进展。尽管它们具有能源效率,但通过更有效地控制这些轧机,仍可以实现重大改进。先进的控制通常需要有关轧机关键性能变量的在线信息。在这方面,在磨机中测量粒度是有问题的。但是,可以通过使用软传感器来解决此问题,从而可以从其他过程变量的测量值中估算粒径。在这项调查中,开发了一种软传感器,用于在线估算西澳大利亚州工业IsaMill上的粒径。该传感器由随机森林模型组成,该模型使用在线测量的操作变量作为预测变量,以估算工厂的P 80粒度。主成分分析与随机森林结合使用,使其能够评估新过程度量与其训练数据库中数据的相似性。当新数据超过霍特林的T 2或预测误差或Q指数阈值时,将自动对模型进行重新校准。

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