Optimization of enhanced oil recovery using ASP solution

被引:3
作者
Marques, Landson Soares [1 ]
Rodrigues, Pamela Dias [2 ]
Simonelli, George [1 ]
Assis, Denilson de Jesus [3 ]
Quintella, Cristina M. [2 ]
Lobato, Ana Katerine de Carvalho Lima [1 ,3 ]
de Oliveira, Olivia Maria Cordeiro [4 ]
dos Santos, Luiz Carlos Lobato [1 ]
机构
[1] Fed Univ Bahia UFBA, Postgrad Program Chem Engn PPEQ, Oil Gas & Biofuels Res Grp, R Prof Aristides Novis 2, 2 Floor, BR-40210630 Salvador, BA, Brazil
[2] Fed Univ Bahia UFBA, Inst & Ctr Energy & Environm CIENAM, R Av Adhemar Barros, s-n, 2 floor, BR-40301110 Salvador, BA, Brazil
[3] Salvador Univ UNIFACS, Engn Sch, Av Tancredo Neves 2131, BR-40231902 Salvador, BA, Brazil
[4] Fed Univ Bahia UFBA, Postgrad Program Geochem, R Av Adhemar de Barros s-n, 2 floor, BR-40170290 Salvador, BA, Brazil
关键词
ASP solution; Enhanced oil recovery; Experimental design; Core holder; Chemical method; CRUDE-OIL; AQUEOUS WELAN; XANTHAN GUM; SURFACTANT; POLYMER; PERFORMANCE; INJECTION; CARBONATE; WATER; MECHANISMS;
D O I
10.1016/j.heliyon.2023.e21797
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Many studies have been conducted to focused on developing an optimal alkali/surfactant/polymer (ASP) composition to increase the recovered fraction of oil in reservoirs that have already undergone water injection. To analyze the effect of alkali (Na2CO3), surfactant (lauryl sodium sulfate), and polymer (commercial xanthan gum) concentration on oil recovery, a complete factorial experimental design was performed with combinations of three variables (alkali, surfactant, and polymer) and three central point replications (23 + 3). The experiments were carried out on a core holder using rock samples from the Botucatu formation. The simulated oil reservoirs have an average permeability of 348 mD and a temperature of 60 degrees C. The crude oil was acquired from the Carm ' opolis field, with 25.72 degrees API. Synthetic production water containing 40,000 mg L-1 of NaCl and 13,000 mg L-1 of Na2SO4 was injected through an HPLC pump to saturate the rock samples and to recover the oil in the secondary step. From the experimental results, it was verified that the surfactant and polymer concentrations are the most statistically significant independent variables and that first-order interactions are not statistically significant for the process. The oil recovery factors in the secondary stage ranged between 30 and 36 % of the OOIP, which are within the range reported in the literature. The optimal composition of the ASP fluid obtained a recovered fraction of oil of 62 % in the advanced step. Other combinations reported in the literature used higher concentrations of alkali, surfactant, and polymer with lower recoveries and higher cost in the injection design. Thus, the present study highlights the necessity to investigate the performance of each component of the ASP solution. In addition, the results obtained in this study are very attractive for possible full-scale applications.
引用
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页数:14
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