LAPSE:2023.28208
Published Article

LAPSE:2023.28208
Analysis of Asphaltene Precipitation Models from Solubility and Thermodynamic-Colloidal Theories
April 11, 2023
Abstract
Asphaltenes are known to cause problems related to flocculation, precipitation, and plugging, either in the formation, production lines, and processing equipment. Different models have been proposed to predict the thermodynamic conditions under which asphaltenes precipitate over the past years. This work analyses the performance of various models on their capability to match the literature experimental data of precipitated asphaltene mass fractions. Twenty-five different models based on equation-of-state (EoS), polymer solution, and thermodynamic-colloidal theories were identified. The performance/test datasets were collected and classified according to their pressure/temperature conditions, CO2, n-C5/n-C7 gas, and liquid titrations. Statistical analysis, including residuals, parity plots, and average absolute relative deviation (AARD, %), were used to compare the adequacy of selected models. Results confirmed the need for further model development for general applications over wide pressure, temperature, and composition intervals.
Asphaltenes are known to cause problems related to flocculation, precipitation, and plugging, either in the formation, production lines, and processing equipment. Different models have been proposed to predict the thermodynamic conditions under which asphaltenes precipitate over the past years. This work analyses the performance of various models on their capability to match the literature experimental data of precipitated asphaltene mass fractions. Twenty-five different models based on equation-of-state (EoS), polymer solution, and thermodynamic-colloidal theories were identified. The performance/test datasets were collected and classified according to their pressure/temperature conditions, CO2, n-C5/n-C7 gas, and liquid titrations. Statistical analysis, including residuals, parity plots, and average absolute relative deviation (AARD, %), were used to compare the adequacy of selected models. Results confirmed the need for further model development for general applications over wide pressure, temperature, and composition intervals.
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Keywords
asphaltene precipitation modeling, colloidal theories, EoS, model evaluation, polymer solutions
Subject
Suggested Citation
Hernández EA, Lira-Galeana C, Ancheyta J. Analysis of Asphaltene Precipitation Models from Solubility and Thermodynamic-Colloidal Theories. (2023). LAPSE:2023.28208
Author Affiliations
Hernández EA: Instituto Mexicano del Petróleo, Eje Central Lázaro Cárdenas Norte 152, Col. San Bartolo Atepehuacan, Mexico City 07730, Mexico [ORCID]
Lira-Galeana C: Instituto Mexicano del Petróleo, Eje Central Lázaro Cárdenas Norte 152, Col. San Bartolo Atepehuacan, Mexico City 07730, Mexico
Ancheyta J: Instituto Mexicano del Petróleo, Eje Central Lázaro Cárdenas Norte 152, Col. San Bartolo Atepehuacan, Mexico City 07730, Mexico
Lira-Galeana C: Instituto Mexicano del Petróleo, Eje Central Lázaro Cárdenas Norte 152, Col. San Bartolo Atepehuacan, Mexico City 07730, Mexico
Ancheyta J: Instituto Mexicano del Petróleo, Eje Central Lázaro Cárdenas Norte 152, Col. San Bartolo Atepehuacan, Mexico City 07730, Mexico
Journal Name
Processes
Volume
11
Issue
3
First Page
765
Year
2023
Publication Date
2023-03-04
ISSN
2227-9717
Version Comments
Original Submission
Other Meta
PII: pr11030765, Publication Type: Journal Article
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LAPSE:2023.28208
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https://doi.org/10.3390/pr11030765
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Apr 11, 2023
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