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NEURAL NETWORK MODELING AND OPTIMISING OF THE AGGLOMERATION PROCESS OF SULPHIDE POLYMETALLIC ORES

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dc.contributor.author Zadenova, Tansulu Aydosovna
dc.date.accessioned 2023-07-03T06:29:23Z
dc.date.available 2023-07-03T06:29:23Z
dc.date.issued 2022-04-12
dc.identifier.isbn 978-601-337-674-5
dc.identifier.uri http://rep.enu.kz/handle/enu/3358
dc.description.abstract During the operation of the lead-zinc production while processing of polymetallic ores, problems arose related to the qualityof products and the efficient use of equipment – agglomeration furnace and crushing apparatus. Previously, such issues were resolved due to the experiences and based on mathematical modeling of processes. The mathematical model for optimizing unnecessary such operating mode is a difficult program. Performing calculations is required a fairly large investment of time andresources. Therefore, the program of the mathematical model for optimizing the operating mode of the agglomeration furnace and the crushing device for sinter firing was replaced with a neural network byimplementing the process of training the network based on the results of calculations on a mathematicalmodel. The results obtained showed that neural network models were more accurate than mathematical models, which made it possible to solve production optimization problems of great complexity. The use ofneural networks for modeling technological processes has made it possible to increase the efficiency ofproduct quality controlsystems and automatic controlsystems for the roasting of sulfide polymetallic ores. ru
dc.language.iso en ru
dc.publisher L.N.Gumilyov Eurasian National University ru
dc.subject neural network technology ru
dc.subject modeling oftechnological processes ru
dc.subject optimizing the mode ru
dc.subject agglomeration furnace ru
dc.subject controlsystem and industrial automation ru
dc.title NEURAL NETWORK MODELING AND OPTIMISING OF THE AGGLOMERATION PROCESS OF SULPHIDE POLYMETALLIC ORES ru
dc.type Article ru


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