GAS-CHROMATOGRAPHIC STUDY FOR THE EVALUATION OF THE SUITABILITY OF BITUMINOUS WASTE MATERIAL AS AN ADDITIVE FOR COKE PRODUCTION

Citation
Ma. Diez et al., GAS-CHROMATOGRAPHIC STUDY FOR THE EVALUATION OF THE SUITABILITY OF BITUMINOUS WASTE MATERIAL AS AN ADDITIVE FOR COKE PRODUCTION, Journal of chromatography, 823(1-2), 1998, pp. 527-536
Citations number
31
Categorie Soggetti
Chemistry Analytical","Biochemical Research Methods
Journal title
Volume
823
Issue
1-2
Year of publication
1998
Pages
527 - 536
Database
ISI
SICI code
Abstract
Waste materials derived from coking plants can be used in situ as bitu minous additives in cokemaking. The effectiveness of such materials in the plastic coal range was compared with a coal-tar and four derived pitches of different applications. The volatile matter released from 4 00 up to 500 degrees C by the additives (VM400-500), which was evaluat ed by thermogravimetric analysis, was clearly related to the extent of the modification of the Gieseler maximum fluidity of coking coal/addi tive blends. The decrease in the amount of volatile fraction in the CS , extracts of the additives and the increase in the abundance of polyc yclic aromatic hydrocarbons (PAHs) of relatively high molecular mass w ere evaluated by capillary gas chromatography with flame ionization de tection (GC-FID) analysis. From regression analysis, it can be deduced that there is a relationship between the compositional parameters ded uced from GC-FID analysis and the volatile matter released in the plas tic range of a coking coal (VM400-500). Both composition and VM400-500 of the additive, were found to be responsible for the enhancement in fluidity caused by the presence of the additive in the co-carbonizatio n system. GC-FID analysis may be a good method to assess the effective ness of a bituminous additive in the coal plastic stage and to acquire a better understanding of the components involved in this critical st age of the carbonization process. The changes induced in the plastic r ange by the additive modify the development of coke anisotropy and the bonding between coke matrix and inert material and, consequently, are responsible for the improvement in the coke properties. (C) 1998 Else vier Science B.V. All rights reserved.