Optimization of alkali metals discharge performance of blast furnace slag and its extreme value model

Bibliographic Details
Title: Optimization of alkali metals discharge performance of blast furnace slag and its extreme value model
Authors: Chen Yan-bo, Deng Yong, Liu Ran, Chen Li-da, Guo Xing-min
Source: High Temperature Materials and Processes, Vol 41, Iss 1, Pp 306-314 (2022)
Publisher Information: De Gruyter, 2022.
Publication Year: 2022
Collection: LCC:Technology
LCC:Chemical technology
LCC:Chemicals: Manufacture, use, etc.
Subject Terms: blast furnace, slag alkali metals discharge, influence mechanism, performance optimization, extreme value model, Technology, Chemical technology, TP1-1185, Chemicals: Manufacture, use, etc., TP200-248
More Details: In order to improve the alkali metals discharge capacity of slag, the gas-slag balance method was used to carry out the slag alkali metals discharge experiments, the effect of slag composition on alkali metals discharge performance of slag was studied, some suggestions were put forward to optimize the alkali metals discharge performance of slag and the extreme value model was established. The results show that the alkali metals discharge ratio of slag decreased with the increase in the binary basicity and mass fraction of TiO2, and increased with the increase in the mass fraction of MgO, Al2O3 and MnO. The change in slag composition led to the change in the solubility of alkali metal oxides in liquid slag, decomposition of alkali metal silicates, structure of the slag in liquid state and viscosity of the slag, and then affected the alkali metals discharge performance of slag. The ability of slag to absorb alkali metals was certain under the condition of fixed composition. With the help of slag alkali metals discharge extreme value model, whether the current slag meets the needs of blast furnace alkali metals discharge could be evaluated. The alkali metals discharge capacity of slag could be improved by optimizing the alkali metals discharge performance of slag combined with experiments and actual production.
Document Type: article
File Description: electronic resource
Language: English
ISSN: 2191-0324
Relation: https://doaj.org/toc/2191-0324
DOI: 10.1515/htmp-2022-0013
Access URL: https://doaj.org/article/4c31acc01b5e4366a9e6f7c38704d097
Accession Number: edsdoj.4c31acc01b5e4366a9e6f7c38704d097
Database: Directory of Open Access Journals
More Details
ISSN:21910324
DOI:10.1515/htmp-2022-0013
Published in:High Temperature Materials and Processes
Language:English