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Comprehensive Knowledge-Driven AI System for Air Classification Process
DOI:10.3390/ma15010045.png)
摘要
En 中文
Air classifier devices have a distinct advantage over other systems used to separate materials. They maximize the mill's capacity and therefore constitute efficient methods of reducing the energy consumption of crushing and grinding operations. Since improvement in their performance is challenging, the development of an efficient modeling system is of great practical significance. The paper introduces a novel, knowledge-based classification (FLClass) system of bulk materials. A wide range of operating parameters are considered in the study: the mean mass and the Sauter mean diameter of the fed material, classifier rotor speed, working air pressure, and test conducting time. The output variables are the Sauter mean diameter and the cut size of the classification product, as well as the performance of the process. The model was successfully validated against experimental data. The maximum relative error between the measured and predicted data is lower than 9%. The presented fuzzy-logic-based approach allows an optimization study of the process to be conducted. For the considered range of input parameters, the highest performance of the classification process is equal to almost 362 g/min. To the best of our knowledge, this paper is the first one available in open literature dealing with the fuzzy logic approach in modeling the air classification process of bulk materials.
Keyword:
classification model
separation control
fuzzy logic
machine learning
artificial intelligence
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期刊
IF:
3.2
论文数:
5.7W
被引数:
15.1W
机构
引用论文
Fluidized Bed Jet Milling Process Optimized for Mass and Particle Size with a Fuzzy Logic Approach
MATERIALS
IF3.2
Preliminary U-Pb Detrital Zircon Ages from Tufiti di Tusa Formation (Lucanian Apennines, Southern Italy): Evidence of Rupelian Volcaniclastic SupplyTufiti di Tusa地层(意大利南部卢卡尼亚亚平宁山脉)初步U-Pb碎屑锆石年龄:Rupelian火山碎屑供应的证据
Minerals
IF0

