Low salinity water-Surfactant-CO2 EOR

Tadesse Weldu Teklu , Waleed Alameri , Hossein Kazemi , Ramona M. Graves , Ali M. AlSumaiti

Petroleum ›› 2017, Vol. 3 ›› Issue (3) : 309 -320.

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Petroleum ›› 2017, Vol. 3 ›› Issue (3) :309 -320. DOI: 10.1016/j.petlm.2017.03.003
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Low salinity water-Surfactant-CO2 EOR
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Abstract

Coreflood, interfacial tension (IFT), contact angle, and phase behavior measurements were performed to investigate the viability of a hybrid of low-salinity water, surfactant, and CO2 flood enhanced oil recovery (EOR) process.

Low-permeability carbonate reservoir cores were aged for eight weeks at reservoir temperature and pressure. Coreflood and contact angle between oil droplets and core surface measurements were performed. Additional contact angle measurements on sandstone and shale cores were also performed. The coreflood sequences were seawater flood, followed by low-salinity water flood, followed by surfactant floods until residual oil saturations to each flooding sequences and finally CO2 injection.

Coreflood in low-permeability carbonate cores show that the hybrid EOR process produces incremental oil up to twenty-five percent beyond seawater flooding. Contact angle measurements on carbonate, sandstone and shale cores indicate that wettability alteration and IFT decrease are the main oil-mobilizing mechanisms in the hybrid EOR process.

The hybrid EOR process mobilizes part of the residual oil because: (i) low-salinity brine improves wettability towards hydrophilic condition favorable for surfactant flooding; (ii) surfactant in low-salinity water solubilizes some of the remaining oil as Winsor type II microemulsion and lowers IFT between oil and water; and (iii) CO2 will follow surfactant to mobilize more of the remaining oil in the wettability-improved condition.

Keywords

Low-salinity water EOR / Surfactant EOR / CO2 EOR / Hybrid LS-surfactant EOR / Hybrid LS-gas/CO2 EOR / Hybrid LS-surfactant-gas/CO2 EOR / Wettability alteration / Interfacial tension (IFT)

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Tadesse Weldu Teklu, Waleed Alameri, Hossein Kazemi, Ramona M. Graves, Ali M. AlSumaiti. Low salinity water-Surfactant-CO2 EOR. Petroleum, 2017, 3(3): 309-320 DOI:10.1016/j.petlm.2017.03.003

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References

[1]

P.P. Jadhunandan, N.R. Morrow, Effect of wettability on waterflood recovery for crude-oil/brine/rock systems, SPE Reserv. Eng. 10 (01) (1995) 40-46. SPE-22597-PA.

[2]

G.Q. Tang, N. Morrow, Salinity, temperature, oil composition, and oil recovery by waterflooding, SPE Reserv. Eng. 12 (04) (1997) 269-276.

[3]

S. Strand, E.J. Hogensen, T. Austad, Wettability alteration of carbonates e effects of potential determining ions (Ca2+ and SO4 2-) and temperature, Colloids Surfaces A Physicochem. Eng. Aspects 275 (1-3) (2006) 1-10.

[4]

P. Zhang, T. Austad, Wettability and oil recovery from carbonates: effects of temperature and potential determining ions, Colloids Surfaces A Physicochem. Eng. Aspects 279 (2006) 179-187.

[5]

O. Karoussi, A.A. Hamouda, Imbibition of sulfate and magnesium ions into carbonate rocks at elevated temperatures and their influence on wettability alteration and oil recovery, Energy Fuels 21 (2007) 2138-2146.

[6]

A. RezaeiDoust, T. Puntervold, S. Strand, T. Austad, Smart water as wettability modifier in carbonate and sandstone: a discussion of similarities/differences in the chemical mechanisms, Energy Fuels 23 (2009) 4479-4485.

[7]

M. Cissokho, S. Boussour, P. Cordier, H. Bertin, G. Hamon, Low salinity oil recovery on clayey sandstone: experimental study, Petrophysics 51 (05) (2010) 305-313.

[8]

T. Austad, A. RezaeiDoust, T. Puntervold, Chemical mechanism of lowsalinity water flooding in sandstone reservoirs, in: SPE 129767, Presented at the SPE Improved Oil Recovery Symposium, Tulsa, 24e28 April, 2010.

[9]

S.J. Fathi, T. Austad, S. Strand, “Smart water” as a wettability modifier in chalk: the effect of salinity and ionic composition, Energy Fuels 24 (2010) 2514-2519.

[10]

N. Morrow, J. Buckley, Improved oil recovery by low-salinity waterflooding, J. Petrol. Technol. (2011) 106-112. SPE 129421.

[11]

A.A. Yousef, S.H. Al-Saleh, A. Al-Kaabi, M.S. Al-Jawfi, Laboratory investigation of the impact of injection-water salinity and ionic content on oil recovery from carbonate reservoirs, SPE Reserv. Eval. Eng. 14 (05) (2011) 578-593.

[12]

R.A. Nasralla, M.A. Bataweel, H.A. Nasr-El-Din, Wettability studies using low-salinity water in sandstone reservoirs, SPE Reserv. Eng. 14 (06) (2011) 713-725. SPE 149942-PA.

[13]

Z. Yi, H. Sarma, Improving waterflood recovery efficiency in carbonate reservoirs through salinity variations and ionic exchanges: a promising low-cost “Smart-Waterflood” approach,in:SPE 161631, Presented at the Abu Dhabi International Petroleum Exhibition & Conference, Abu Dhabi, UAE, 11e14 November, 2012.

[14]

A.Y. Zekri, M. Nasr, Z. Al-Arabai,Effect of EOR technology on wettability and oil recovery of carbonate and sandstone formation, in:IPTC 14131 Presented at the International Petroleum Technology Conference, Bangkok, Thailand, 7e9 February, 2012.

[15]

A.S. Al-Harrasi, R.S. Al-Maamari, S. Masalmeh, Laboratory investigation of low salinity waterflooding for carbonate reservoirs, in: SPE 161468, Presented at the Abu Dhabi International Petroleum Exhibition & Conference, Abu Dhabi, UAE, 11e14 November, 2012.

[16]

W. Alameri, T.W. Teklu, R.M. Graves, H. Kazemi, A.M. AlSumaiti, Wettability alteration during low-salinity waterflooding in carbonate reservoir cores, in: SPE 171529, Presented at the SPE Pacific Oil & Gas Conference and Exhibition Held in Adelaide, Australia, 14-16 October 2014, 2014.

[17]

A. Awolayo, H. Sarma, A.M. AlSumaiti, A laboratory study of ionic effect of smart water for enhancing oil recovery in carbonate reservoirs, in: SPE 169662-MS, Presented at the SPE EOR Oil and Gas West Asia Conference, Muscat, Oman, 31 Marche 2 April, 2014.

[18]

W. Alameri,Low Salinity Waterflooding in a Low Permeability Carbonate Formation of a Giant Middle East Field, PhD Dissertation, Petroleum Engineering, Colorado School of Mines, 2015 (May).

[19]

W. Alameri, T.W. Teklu, R.M. Graves, H. Kazemi, A.M. AlSumaiti, Lowsalinity water-alternate-surfactant in low-permeability carbonate reservoirs, in: Presented at the 18th European Symposium on Improved Oil Recovery Conference, April 14 to 16, 2015, Dresden, Germany, 2015, http://dx.doi.org/10.3997/2214-4609.201412158.

[20]

W. Alameri, T.W. Teklu, R.M. Graves, H. Kazemi, A.M. AlSumaiti, Experimental and numerical modeling of low-salinity waterflood in a low permeability carbonate reservoir, in: SPE 174001, Presented at the SPE Western Regional Meeting Held in Garden Grove, California, USA, 27e30 April, 2015.

[21]

T.W. Teklu, W. Alameri, H. Kazemi, R. Graves, Contact angle measurements on conventional and unconventional reservoir cores, in: URTeC 2153996, Presented at the Unconventional Resources Technology Conference, San Antonio, Texas, USA, 20e22 July, 2015.

[22]

T.W. Teklu, W. Alameri, R.M. Graves, H. Kazemi, A.M. AlSumaiti, Lowsalinity water-alternating-CO2 EOR, J. Petrol. Sci. Eng. 142 (2016) 101-118.

[23]

G.Q. Tang, N. Morrow, Influence of brine composition and fines migration on crude oil/brine/rock interactions and oil recovery, J. Petrol. Sci. Eng. 24 (2) (1999) 99-111.

[24]

H. Pu, X. Xie, P. Yin, N. Morrow, Low salinity waterflooding and mineral dissolution, in: SPE 134042, Presented at the Annual Technical Conference and Exhibition Held in Florence, Italy, 19e22 September, 2010.

[25]

A. Hiorth, L. Cathles, M. Madland, The impact of pore water chemistry on carbonate surface charge and oil wettability, Transp. Porous Media 85 (1) (2010) 1-21.

[26]

P.L. McGuire, J.R. Chatham, F.K. Paskvan, D.M. Sommer, F.H. Carini, Low salinity oil recovery: an exciting new EOR opportunity for Alaska's North Slope,in:SPE-93903-MS, Presented at the SPE Western Regional Meeting, Irvine, California, 30 Marche 1 April, 2005.

[27]

A. Lager, K.J. Webb, C.J.J. Black, M. Singleton, K.S. Sorbie, Low salinity oil recovery e an experimental investigation, Petrophysics 49 (1) (2008) 28-35.

[28]

T. Austad, S.F. Sgariatpanahi, S. Strand, C.J.J. Black, K.J. Webb, Conditions for a low-salinity enhanced oil recovery (EOR) effect in carbonate oil reservoirs, Energy Fuels 26 (2011) 569-575.

[29]

A. Zahid, A. Shapiro, A. Skauge, Experimental studies of low-salinity water flooding carbonate: a new promising approach,in:SPE 155625, Presented at the SPE EOR Conference at Oil and Gas West Asia, Muscat, Oman, 16e18 April, 2012.

[30]

D.J. Ligthelm, J. Gronsveld, J.P. Hofman, N.J. Brussee, F. Marcelis, H. van der Linde,Novel waterflooding strategy by manipulation of injection brine composition, in:SPE 119835, Presented at the EUROPEC/EAGE Conference and Exhibition, 8e11 June, Amsterdam, The Netherlands, 2009.

[31]

S. Lee, K. Webb, I. Collins, A. Lager, S. Clarke, A. O'Sullivan, X. Wang, Low salinity oil recovery e increasing understanding of the underlying mechanisms, in: SPE 129722, Presented at the SPE Improved Oil Recovery Symposium Held in Tulsa, Oklahoma, USA, 24e28 April, 2010.

[32]

H. Mahani, A.L. Keya, S. Berg, W.B. Bartels, R. Nasralla, W.R. Rossen, Insights into the mechanism of wettability alteration by low-salinity flooding (LSF) in carbonates, Energy Fuels 29 (3) (2015) 1352-1367.

[33]

M.B. Alotaibi, H.A. Nasr-El-Din, J.J. Fletcher, Electrokinetics of limestone and dolomite rock particles, SPE Reserv. Eval. Eng. J. 14 (6) (2011) 594-603.

[34]

A. Emadi, M. Sohrabi, Visual investigation of oil recovery by low salinity water injection: formation of water micro-dispersions and wettability alteration,in:SPE-166435-MS, Presented at the SPE Annual Technical Conference and Exhibition, New Orleans, Louisiana, 30 Septembere 2 October, 2013.

[35]

T.W. Teklu, W. Alameri, R.M. Graves, H. Kazemi, A.M. AlSumaiti, Lowsalinity water-alternating-CO2 flooding enhanced oil recovery: theory and experiments, in: SPE 171767-MS, Presented at the Abu Dhabi International Petroleum Exhibition and Conference, 10 e 13 November, Abu Dhabi, UAE, 2014.

[36]

T.W. Teklu,Experimental and Numerical Study of Carbon Dioxide Injection Enhanced Oil Recovery in Low-permeability Reservoirs, PhD Dissertation, Petroleum Engineering, Colorado School of Mines, 2015 (May).

[37]

T.W. Teklu, W. Alameri, H. Kazemi, R.M. Graves, A.M. AlSumaiti, Lowsalinity-wateresurfactanteCO2 EOR: theory and experiments, in: Presented at the 18th European Symposium on Improved Oil Recovery Conference, Dresden, Germany, April 14-16, 2015, http://dx.doi.org/10.3997/2214-4609.201412104.

[38]

T.W. Teklu, N. Alharthy, W. Alameri, H. Kazemi, R. Graves, Matrix-fracture interface cleanup protocol for tight sandstone and carbonate reservoirs, in: 77th EAGE Conference, Madrid, Spain, 1e4 June, 2015, http://dx.doi.org/10.3997/2214-4609.201413329.

[39]

W.G. Anderson, Wettability literature survey e part 1: rock/oil/brine interactions and the effects of core handling on wettability, JPT 38 (10) (1986) 1125-1144. SPE 13932-PA.

[40]

N.R. Morrow, Wettability and its effect on oil recovery, JPT 42 (12) (1990a) 1476-1484. SPE 21621-PA.

[41]

Interfacial phenomena in petroleum recovery, in: N. R. Morrow (Ed. ), Surfactant Science Series,vol. 36, Marcell Dekker, New York, 1990b.

[42]

G.J. Hirasaki, Wettability: fundamentals and surface forces, SPE Form. Eval. 6 (02) (1991) 217-226.

[43]

J.S. Buckley, Y. Liu, S. Monsterleet, Mechanisms of wetting alteration by crude oils, SPE J. 3 (01) (1998) 54-61. SPE 37230-PA.

[44]

J.H. Bae, Glenn pool surfactant-flood expansion project e a technical summary, SPE Reserv. Eng. 10 (2) (1995) 123-127.

[45]

H.L. Chen, L.R. Lucas, L.A.D. Nogaret, H.D. Yang, D.E. Kenyon, Laboratory monitoring of surfactant imbibition with computerized tomography, SPE Reserv. Eval. Eng. 4 (01) (2001) 16-25.

[46]

E.J. Manrique, V.E. Muci, M.E. Gurfinkel, EOR field experiences in carbonate reservoirs in the United States, SPE Reserv. Eval Eng. 10 (06) (2007) 667-686. SPE 100063-PA.

[47]

G. Hirasaki, C.A. Miller, M. Puerto, Recent advances in surfactant EOR, SPE J. 16 (04) (2011) 889-907.

[48]

J.J. Sheng, Enhanced Oil Recovery Field Case Studies, Gulf Professional Publishing Publications, 2013.

[49]

G. Sharma, K. Mohanty, Wettability alteration in high-temperature and high-salinity carbonate reservoirs, SPE J. 18 (04) (2013) 646-655.

[50]

E. Alagic, A. Skauge, Combined low salinity brine injection and surfactant flooding in mixed-wet sandstone cores, Energy Fuels 24 (6) (2010) 3551-3559.

[51]

S.C. Ayirala, E. Uehara-Nagamine, A.N. Matzakos, R.W. Chin, P.H. Doe, P.J. van den Hoek, A designer water process for offshore low salinity and polymer flooding applications, in: SPE-129926-MS, Presented at the SPE Improved Oil Recovery Symposium, 24e28 April, Tulsa, Oklahoma, USA, 2010.

[52]

S.G. Ghedan, Global laboratory experience of CO2-EOR flooding, in: SPE 125581, Presented at SPE/EAGE Reservoir Characterization & Simulation Conference, Abu Dhabi, UAE, 19e21 October, 2009.

[53]

V. Kuuskraa, M. Wallace, CO2-EOR set for growth as new CO2 supplies emerge, OGJ April 07, 2014, 2014.

[54]

OGJ, Survey: Miscible CO2 Continues to Eclipse Steam in US EOR Production, OGJ April 07, 2014, 2014.

[55]

F.I. Stalkup, Miscible Displacement, SPE Monograph Series, Richardson, TX (1983), 1983.

[56]

W.R. Brock, L.A. Bryan, Summary results of CO2 EOR field tests 1972-1987, in: SPE 18977, Presented at Low Permeability Reservoirs Symposium, Denver, Colorado, 6-8 March, 1989.

[57]

R.E. Hadlow, Update of industry experience with CO2 injection, in: SPE 24928-MS, Presented at SPE Annual Technical Conference and Exhibition, Washington, D.C., 4-7 October, 1992.

[58]

J.R. Christensen, E.H. Stenby, A. Skauge, Review of WAG field experience, SPE Reserv. Eval. Eng. 4 (02) (2001) 97-106. SPE 71203-PA.

[59]

J.D. Rogers, R.B. Grigg, A literature analysis of the WAG injectivity abnormalities in the CO2 process, SPE Reserv. Eval. Eng. 4 (05) (2001) 375-386. SPE 73830-PA.

[60]

V. Alvarado, E. Manrique, Enhanced oil recovery: an update review, Energies 2010 (3) (2010) 1529-1575.

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