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Solvent recovery in solvent deasphalting process for economical vacuum residue upgrading

Authors
Ahn, SeonjuShin, SangcheolIm, Soo IkLee, Ki BongNho, Nam Sun
Issue Date
1월-2016
Publisher
KOREAN INSTITUTE CHEMICAL ENGINEERS
Keywords
Solvent Deasphalting; Vacuum Residue; Solvent Recovery; Numerical Simulation; Propane; Butane
Citation
KOREAN JOURNAL OF CHEMICAL ENGINEERING, v.33, no.1, pp.265 - 270
Indexed
SCIE
SCOPUS
KCI
Journal Title
KOREAN JOURNAL OF CHEMICAL ENGINEERING
Volume
33
Number
1
Start Page
265
End Page
270
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/89996
DOI
10.1007/s11814-015-0146-3
ISSN
0256-1115
Abstract
The solvent deasphalting (SDA) process is a heavy oil upgrading process and used to separate asphaltene, the heaviest and most polar fraction of vacuum residue (VR) of heavy oil, by using density differences, to obtain deasphalted oil (DAO). The SDA process consists of two main stages: asphaltene separation and solvent recovery. Solvent recovery is a key procedure for determining the operating cost of the SDA process, because it uses a considerable amount of costly solvent, the recovery of which consumes huge amounts of energy. In this study, the SDA process was numerically simulated by using three different solvents, propane, n-butane, and isobutane, to examine their effect on the DAO extraction and the effect of the operating temperature and pressure on solvent recovery. The process was designed to contain one extractor, two flash drums, and two steam strippers. The VR was characterized by identifying 15 pseudo-components based on the boiling point distribution, obtained by performing a SIMDIS analysis, and the API gravity of the components. When n-butane was used, the yield of DAO was higher than in the other cases, whereas isobutane showed a similar extraction performance as propane. Solvent recovery was found to increase with temperature and decrease with pressure for all the solvents that were tested and the best results were obtained for propane.
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