Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm

Nowadays, the world has become a unified factory. However, with the adoption of coal resources gradually increased, the waste of coal resources and environmental pollution has increased. Under such occasion, methanol as an alternative energy source plays a more prominent role in the economy. But, th...

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Main Authors: Wei Zhang, Xinming Lu, Huiling Shi, Longquan Zhou
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2017-12-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/946
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spelling doaj-58a17d90234b40e7b186b0bfcd1a50d32021-02-17T21:15:54ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162017-12-016210.3303/CET1762148Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm Wei ZhangXinming LuHuiling ShiLongquan ZhouNowadays, the world has become a unified factory. However, with the adoption of coal resources gradually increased, the waste of coal resources and environmental pollution has increased. Under such occasion, methanol as an alternative energy source plays a more prominent role in the economy. But, the process and equipment of coal-to-methanol are far from perfect, which directly leads to the result that the adoption of coal- to-methanol technology is disadvantageous and lacks of development. Therefore, the production process of coal to methanol requires the following economical design. First, the coal should be saved through the intelligent improvement and the optimization of process, so as to continuously improve the efficiency of the process. Secondly, in the process of coal to methanol, electric energy should be saved. Through the renewal of equipment, the energy consumption can be continuously saved. The real-time optimization control method can solve the problem of optimization and control the complex process industry, so as to make the process run as economically optimized as possible. Besides, the on-line learning ability of neural network makes it a unique advantage in on-line controller, and hence, it is an important tool for real-time optimization control. This paper makes full use of the advantages of neural network algorithm to optimize the process production of coal-to-methanol. First of all, the process of coal to methanol is mainly focused on, and the key links of the production process are introduced. Secondly, the neural network algorithm is studied. Then, a control method based on neural network algorithm is proposed for real-time optimization control of coal-to-methanol production. Finally, in the simulation experiment, the proposed method is verified and analyzed. Experimental results show that the control method of neural network algorithm can make sure the smooth operation of coal- to-methanol production process, and realize a high control precision. When the efficient production conditions can be guaranteed, the energy consumption of the system can also be effectively reduced. Similarly, the energy saving effect is quite remarkable. https://www.cetjournal.it/index.php/cet/article/view/946
collection DOAJ
language English
format Article
sources DOAJ
author Wei Zhang
Xinming Lu
Huiling Shi
Longquan Zhou
spellingShingle Wei Zhang
Xinming Lu
Huiling Shi
Longquan Zhou
Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm
Chemical Engineering Transactions
author_facet Wei Zhang
Xinming Lu
Huiling Shi
Longquan Zhou
author_sort Wei Zhang
title Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm
title_short Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm
title_full Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm
title_fullStr Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm
title_full_unstemmed Optimization Control of Coal Methanol Chemical Process Based on Neural Network Algorithm
title_sort optimization control of coal methanol chemical process based on neural network algorithm
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2017-12-01
description Nowadays, the world has become a unified factory. However, with the adoption of coal resources gradually increased, the waste of coal resources and environmental pollution has increased. Under such occasion, methanol as an alternative energy source plays a more prominent role in the economy. But, the process and equipment of coal-to-methanol are far from perfect, which directly leads to the result that the adoption of coal- to-methanol technology is disadvantageous and lacks of development. Therefore, the production process of coal to methanol requires the following economical design. First, the coal should be saved through the intelligent improvement and the optimization of process, so as to continuously improve the efficiency of the process. Secondly, in the process of coal to methanol, electric energy should be saved. Through the renewal of equipment, the energy consumption can be continuously saved. The real-time optimization control method can solve the problem of optimization and control the complex process industry, so as to make the process run as economically optimized as possible. Besides, the on-line learning ability of neural network makes it a unique advantage in on-line controller, and hence, it is an important tool for real-time optimization control. This paper makes full use of the advantages of neural network algorithm to optimize the process production of coal-to-methanol. First of all, the process of coal to methanol is mainly focused on, and the key links of the production process are introduced. Secondly, the neural network algorithm is studied. Then, a control method based on neural network algorithm is proposed for real-time optimization control of coal-to-methanol production. Finally, in the simulation experiment, the proposed method is verified and analyzed. Experimental results show that the control method of neural network algorithm can make sure the smooth operation of coal- to-methanol production process, and realize a high control precision. When the efficient production conditions can be guaranteed, the energy consumption of the system can also be effectively reduced. Similarly, the energy saving effect is quite remarkable.
url https://www.cetjournal.it/index.php/cet/article/view/946
work_keys_str_mv AT weizhang optimizationcontrolofcoalmethanolchemicalprocessbasedonneuralnetworkalgorithm
AT xinminglu optimizationcontrolofcoalmethanolchemicalprocessbasedonneuralnetworkalgorithm
AT huilingshi optimizationcontrolofcoalmethanolchemicalprocessbasedonneuralnetworkalgorithm
AT longquanzhou optimizationcontrolofcoalmethanolchemicalprocessbasedonneuralnetworkalgorithm
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