Page 82 - Formation Damage during Improved Oil Recovery Fundamentals and Applications
P. 82
64 David A. Wood and Bin Yuan
Dang, C., Nghiem, L., Nguyen, N., Chen, Z., Nguyen, Q., 2016. Evaluation of CO 2
low salinity water-alternating-gas for enhanced oil recovery. J. Nat. Gas. Sci. Eng. 35,
237 258.
Debye, P., Hu ¨ckel, E., 1923. The theory of electrolytes. I. Lowering of freezing point and
related phenomena. Phys Z. 24, 185 206.
Elimelech, M., Gregory, J., Jia, X., Williams, R.A., 1995. Particle Deposition &
Aggregation: xiii-xv. Butterworth-Heinemann, Woburn.
Fathi, S.J., Austad, T., Strand, S., 2011. Effect of water-extractable carboxylic acids in
crude oil on wettability in carbonates. Energy Fuels 25, 2587 2592.
Fjelde, I., Asen, S.M., 2010. Wettability alteration during water flooding and carbon diox-
ide flooding of reservoir chalk rocks. In: Paper SPE 130992, SPE EUROPEC/EAGE
Annual Conference and Exhibition, Barcelona, Spain.
Gandomkar, A., Rahimpour, M.R., 2015. Investigation of low-salinity waterflooding in
secondary and tertiary enhanced oil recovery in limestone reservoirs. Energy Fuels 29,
7781 7792.
Greathouse, J.A., Feller, S.E., McQuarrie, D.A., 1994. The Modified Gouy-Chapman
Theory: Comparisons between Electrical Double Layer Models of Clay Swelling, 10.
American Chemical Society., Langmuir, pp. 2125 2130 (7).
Hamouda, A.A., Gupta, S., 2017. Enhancing oil recovery from chalk reservoirs by a low-
salinity water flooding mechanism and fluid/rock interactions. Energies 10 (576), 16.
Hourshad, M., Jerauld, G., 2012. Mechanistic modeling of the benefit of combining poly-
mer with low salinity water for enhanced oil recovery. Paper SPE-153161-MS pre-
sented at SPE Improved Oil Recovery Symposium, 14 18 April, Tulsa, Oklahoma,
USA.
Huang, T., Crews, J., Willingham, J.R., 2008. Using nanoparticles technology to control
fine migration, Paper SPE-115384-MS presented at SPE Annual Technical
Conference and Exhibition, 21 24 September, Denver, Colorado, USA.
Hussain, F., Zeinijahromi, A., Bedrikovetsky, P., Cinar, Y., Badalyan, A., Carageorgos, T.,
2013. An experimental study of improved oil recovery through fines-assisted water-
flooding. J. Pet. Sci. Eng. 109, 187 197.
Jackson, M.D., Vinogradov, J., 2012. Impact of wettability on laboratory measurements of
streaming potential in carbonates. Colloids Surf. Physicochem. Eng. Asp. 393, 86 95.
Jadhunandan, P.P., Morrow, N.R., 1995. Effect of wettability on waterflood recovery for
crude-oil/brine/rock systems. SPE. Reserv. Eng, 40 46.
Jerauld, G.R., Lin, C.Y., Webb, K.J., Seccombe, J.C., 2006. Modeling low-salinity water-
flooding. In: Proceedings of the SPE Annual Technical Conference and Exhibition,
San Antonio, TX, USA, 24 27 September, SPE102239. https://doi.org/10.2118/
102239-MS.
Khilar, D.C., Fogler, H.S.J., 1984. The existence of a critical salt concentration for particle
release. J. Colloid Interface Sci. 101, 214 224.
Khilar, K.C., Fogler, H.S., Ahluwalia, J.S., 1983. Sandstone water sensitivity: existence of
a critical rate of salinity decrease for particle capture. Chem. Engr. Sci. 38 (5),
789 800.
Kia, S.F., Fogler, H.S., Reed, M.G., 1987. Effect of pH on colloidally induced fines
migration. J. Colloid Interface Sci. 118 (1), 158 168.
Lager, A., Webb, K.J. and Seccombe, J.C., 2011. Low salinity waterflood, Endicott,
Alaska: Geochemical study & field evidence of multicomponent ion exchange. 16th
European Symposium on Improved Oil Recovery, 12 14 April.
Lager, Arnaud, Webb, K.J., Black, C.J.J., Singleton, M., Sorbie, K.S., 2008. Low salinity
oil recovery an experimental investigation. Petrophysics 49 (1), 28 35.
Lemon, P., 2011. Effects of injected-water salinity on waterflood sweep efficiency through
induced fines migration. J. Can. Pet. Technol. 50, 9 10.