LAPSE:2023.21695
Published Article

LAPSE:2023.21695
Some Aspects of the Control for the Radial Distribution of Burden Material and Gas Flow in the Blast Furnace
March 22, 2023
Abstract
The paper presents an experimental study on the formation process of burden surface texture on the blast furnace throat and its influence on the radial distribution of gas flow. The study was performed with the application of blast furnaces equipped with a bell-type charging device using radio-isotope means for the control of burden surface texture (profile) and burden surface level, i.e., gamma locators for burden surface texture. The study was carried out under the conditions of an operating blast furnace in an iron and steel plant using a unique GEOTAPS system for automated control of geometric and temperature parameters of burden material surface on the blast furnace throat. The influence of the surface texture on the gas flow distribution was also investigated. The possibility of a self-stabilization effect for burden surface texture and gas flow in an operating blast furnace under suitable conditions was experimentally proven. As a result of the experimental study performed, four ways of energy-saving technology implementation were determined for the control of blast furnace melting based on the data on the burden surface texture and previously unknown regularities of surface layer formation of burden material on the throat of an operating blast furnace with a bell-type charging device. The main idea of the paper is the development of automated control for the radial distribution of burden material and gas flow using actual or predicted surface texture parameters as important intermediate factors that both describe the process and have a significant simultaneous influence on it.
The paper presents an experimental study on the formation process of burden surface texture on the blast furnace throat and its influence on the radial distribution of gas flow. The study was performed with the application of blast furnaces equipped with a bell-type charging device using radio-isotope means for the control of burden surface texture (profile) and burden surface level, i.e., gamma locators for burden surface texture. The study was carried out under the conditions of an operating blast furnace in an iron and steel plant using a unique GEOTAPS system for automated control of geometric and temperature parameters of burden material surface on the blast furnace throat. The influence of the surface texture on the gas flow distribution was also investigated. The possibility of a self-stabilization effect for burden surface texture and gas flow in an operating blast furnace under suitable conditions was experimentally proven. As a result of the experimental study performed, four ways of energy-saving technology implementation were determined for the control of blast furnace melting based on the data on the burden surface texture and previously unknown regularities of surface layer formation of burden material on the throat of an operating blast furnace with a bell-type charging device. The main idea of the paper is the development of automated control for the radial distribution of burden material and gas flow using actual or predicted surface texture parameters as important intermediate factors that both describe the process and have a significant simultaneous influence on it.
Record ID
Keywords
energy saving, gas flow in blast furnace, process efficiency
Subject
Suggested Citation
Golovchenko A, Dychkovskyi R, Pazynich Y, Edgar CC, Howaniec N, Jura B, Smolinski A. Some Aspects of the Control for the Radial Distribution of Burden Material and Gas Flow in the Blast Furnace. (2023). LAPSE:2023.21695
Author Affiliations
Golovchenko A: Interdisciplinary Institute of Continuing Education, Dnipro University of Technology, UA-49027 Dnipro, Ukraine [ORCID]
Dychkovskyi R: Department of Development & Research, Dnipro University of Technology, UA-49027 Dnipro, Ukraine [ORCID]
Pazynich Y: Interdisciplinary Institute of Continuing Education, Dnipro University of Technology, UA-49027 Dnipro, Ukraine [ORCID]
Edgar CC: Scientific Research Institute of the Center of Renewable Energy and Energy Efficiency, Universidad Nacional de San Agustin de Arequipa, Arequipa PE-04000, Peru [ORCID]
Howaniec N: Department of Energy Saving and Air Protection, Central Mining Institute, 40-166 Katowice, Poland [ORCID]
Jura B: Experimental Mine Barbara, Central Mining Institute, Plac Gwarkow 1, 40-166 Katowice, Poland
Smolinski A: Department of Energy Saving and Air Protection, Central Mining Institute, 40-166 Katowice, Poland [ORCID]
Dychkovskyi R: Department of Development & Research, Dnipro University of Technology, UA-49027 Dnipro, Ukraine [ORCID]
Pazynich Y: Interdisciplinary Institute of Continuing Education, Dnipro University of Technology, UA-49027 Dnipro, Ukraine [ORCID]
Edgar CC: Scientific Research Institute of the Center of Renewable Energy and Energy Efficiency, Universidad Nacional de San Agustin de Arequipa, Arequipa PE-04000, Peru [ORCID]
Howaniec N: Department of Energy Saving and Air Protection, Central Mining Institute, 40-166 Katowice, Poland [ORCID]
Jura B: Experimental Mine Barbara, Central Mining Institute, Plac Gwarkow 1, 40-166 Katowice, Poland
Smolinski A: Department of Energy Saving and Air Protection, Central Mining Institute, 40-166 Katowice, Poland [ORCID]
Journal Name
Energies
Volume
13
Issue
4
Article Number
E923
Year
2020
Publication Date
2020-02-19
ISSN
1996-1073
Version Comments
Original Submission
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PII: en13040923, Publication Type: Journal Article
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LAPSE:2023.21695
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https://doi.org/10.3390/en13040923
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Mar 22, 2023
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