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Based on Spectral Information Fusion Soft Senser Modeling of Wet Ball Mill Load

机译:基于光谱信息融合的湿球磨机负荷软测量建模

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Ball mill load measurement is essential to control and operational optimization for the wet grinding process, which affects the production efficiency and energy consumption. A frequency spectral information fusion soft sensor model is proposed to estimation the mill load in the paper. PCA is used to extract the feature of frequency spectrum to deal with many, noise and collinear variables. FFT is used to estimate the power spectral density(PSD)of the vibration and acoustic signal. PLS were combined with PCA scores inputs to develop mill load. Principal component numbers are selected by an optimize model. A case study shows that the proposed frequency spectral information fusion soft sensor model is effective, and produces better predictive performance than single sensor model.
机译:球磨机负荷测量对于湿磨工艺的控制和操作优化至关重要,因为湿磨工艺会影响生产效率和能耗。提出了一种频谱信息融合软传感器模型来估计轧机负荷。 PCA用于提取频谱特征,以处理许多噪声和共线变量。 FFT用于估计振动和声音信号的功率谱密度(PSD)。 PLS与PCA分数输入相结合以开发轧机负荷。主部件号由优化模型选择。案例研究表明,所提出的频谱信息融合软传感器模型是有效的,并且比单传感器模型具有更好的预测性能。

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