CO mobility control using CO philic surfactant for enhanced oil recovery.

Saved in:
Bibliographic Details
Title: CO mobility control using CO philic surfactant for enhanced oil recovery.
Authors: Sagir, Muhammad sagir.utp@gmail.com, Tan, Isa1, Mushtaq, Muhammad2, Pervaiz, Muhammad3, Tahir, Muhammad4, Shahzad, Khurram4
Source: Journal of Petroleum Exploration & Production Technology. Sep2016, Vol. 6 Issue 3, p401-407. 7p.
Subject Terms: *Carbon dioxide, *Surface active agents, *Interfacial tension, *Enhanced oil recovery, *Nonylphenol
Abstract: CO enhanced oil recovery by using newly synthesized CO philic surfactant as CO mobility control agent is reported. Nonyl phenol ethoxylate sulphonate (NPES) was prepared by the esterification of alcohol with maleic anhydride followed by its sulphonation. Effect of interfacial tension (IFT) between CO and brine using NPES was investigated to verify the CO philicity of the surfactant. The detailed account of effects of pressure and temperature on IFT between CO/brine in the presence and absence of surfactant on specified pressure and temperature conditions is studied and discussed. NPES effectively lowered the IFT between CO/brine (30 mN/m) to less than 5.23 mN/m. Foam quantity was improved by using betaine as foam booster. The static foam endurance properties in the presence and absence of oil were also examined prior to the actual performance test of surfactants using a reservoir core plug sample. It was noted that the foam stability was 900 s in the presence of oil at 90 °C in CO environment. The effect of foam by using synthesized NPES on mobility of CO is also presented. The CO mobility reduction factor was found to be 3.1. It is concluded that NPES has great potential for CO-EOR applications. [ABSTRACT FROM AUTHOR]
Database: Energy & Power Source
Description
Abstract:CO enhanced oil recovery by using newly synthesized CO philic surfactant as CO mobility control agent is reported. Nonyl phenol ethoxylate sulphonate (NPES) was prepared by the esterification of alcohol with maleic anhydride followed by its sulphonation. Effect of interfacial tension (IFT) between CO and brine using NPES was investigated to verify the CO philicity of the surfactant. The detailed account of effects of pressure and temperature on IFT between CO/brine in the presence and absence of surfactant on specified pressure and temperature conditions is studied and discussed. NPES effectively lowered the IFT between CO/brine (30 mN/m) to less than 5.23 mN/m. Foam quantity was improved by using betaine as foam booster. The static foam endurance properties in the presence and absence of oil were also examined prior to the actual performance test of surfactants using a reservoir core plug sample. It was noted that the foam stability was 900 s in the presence of oil at 90 °C in CO environment. The effect of foam by using synthesized NPES on mobility of CO is also presented. The CO mobility reduction factor was found to be 3.1. It is concluded that NPES has great potential for CO-EOR applications. [ABSTRACT FROM AUTHOR]
ISSN:21900558
DOI:10.1007/s13202-015-0192-8