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Modeling of Pressure Dependence of Interfacial Tension Behaviors of Supercritical CO2 + Crude Oil Systems Using a Basic Parachor Expression | ||
Journal of Chemical and Petroleum Engineering | ||
مقاله 3، دوره 50، شماره 2، اردیبهشت 2017، صفحه 19-27 اصل مقاله (432.11 K) | ||
نوع مقاله: Original Paper | ||
شناسه دیجیتال (DOI): 10.22059/jchpe.2017.60501 | ||
نویسنده | ||
Saini Dayanand* | ||
California State University, Bakersfield, CA, USA | ||
چکیده | ||
Parachor based expressions (basic and mechanistic) are often used to model the experimentally observed pressure dependence of interfacial tension (IFT) behaviors of complex supercritical carbon dioxide (sc-CO2) and crude oil mixtures at elevated temperatures. However, such modeling requires various input data (e.g. compositions and densities of the equilibrium liquid and vapor phases, and molecular weights and diffusion coefficients for various components present in the system). In the absence of measured data, often phase behavior packages are used for obtaining these input data for performing calculations. Very few researchers have used experimentally measured input data for performing parachor based modeling of the experimental IFT behaviors of sc-CO2 and crude oil systems that are of particular interest to CO2 injection in porous media based enhanced oil recovery (EOR) operations. This study presents the results of parachor based modeling performed to predict pressure dependence of IFT behaviors of a complex sc-CO2 and crude oil system for which experimentally measured data is available in public domain. Though parachor model based on calculated IFT behaviors shows significant deviation from the measured behaviors in high IFT region, difference between the calculated and the experimental behaviors appears to vanish in low IFT region. These observations suggest that basic parachor expression based calculated IFT behaviors in low IFT region follow the experimental IFT behaviors more closely. An analysis of published studies (basic and mechanistic parachor expressions based on modeling of pressure dependence of IFT behaviors of both standard and complex sc-CO2 and crude oil systems) and the results of this study reinforce the need of better description of gas-oil interactions for robust modeling of pressure dependence of IFT behavior of these complex systems. | ||
کلیدواژهها | ||
CO2 injection in porous media؛ CO2 -EOR and storage؛ CO2 -oil interactions؛ Gas-oil interfacial tension؛ Parachor model؛ Miscibility | ||
مراجع | ||
[1] Al-Mjeni, R., Arora, S., Cherukupalli, P., van Wun nik, J., Edwards, J., Felber, B.J., Gurpinar, O., Hira saki, G.J., Miller, A.C., Jackson, C., Kristensen, M.R., Lim, F., Ramamoorthy, R. (2011). “Has time come for EOR?”, Schlumberger’s Oil field Review, Winter 2010/2011, Vol. 22, no. 4.
[2] Wallace M, Kuuskraa VA, DiPietro P (2013) An In-Depth Look at “Next Generation” CO2 EOR Technology. Available from http://www.netl.doe.gov/File%20Library/Research/Energy%20Analysis/Publications/ Disag-Next-Gen-CO2-EOR_full_v6.pdf. Accessed June 2015.
[3] Hsu Jack, J.C., Nagarajan, N., Robinson, J.R.L. (1985). “Equilibrium phase compositions, phase densities, and interfacial tension for CO2 + hydrocarbon Systems. 1. CO2 + n-butane.”, Journal of Chemical Engineering Data, Vol. 30, No. 4, pp. 485–491.
[4] Nagarajan, N., Robinson, J.R.L. (1986). “Equilibrium phase compositions, phase densities, and interfacial tensions for CO2 + hydro carbon systems. 2. CO2 + n-decane.” Journal of Chemical Engineering Data, Vol. 31, No. 2, pp. 168–171.
[5] Nagarajan, N., Gasem, K.A.M., Robinson, J.R.L. (1990). “Equilibrium phase compositions, phase densities, and interfacial tensions for CO2 + Hydrocarbon Systems. 6. Carbon dioxide + n-butane + n-decane.” Journal of Chemical Engineering Data, Vol. 35, No. 3, pp. 228–231.
[6] Gasem, K.A.M., Dickson, K.B., Shaver, R.D., Robinson, R.L. (1993). “Experimental phase densities and interfacial tensions for a CO2 /synthetic-oil and a CO2 /reservoir-oil system.” Society of Petroleum Engineers. DOI: 10.2118/22216-PA.
[7] Schechter, D.S., Guo, B. (1998). “Parachors based on modern physics and their uses in IFT prediction of reservoir fluids.” Society of Petroleum Engineers. DOI: 10.2118/30785-PA.
[8] Ayirala, S.C., Rao, D.N. (2004). “Application of a new mechanistic Parachor model to predict dynamic gas-oil miscibility in reservoir crude oil-solvent systems.” Society of Petroleum Engineers. DOI: 10.2118/91920-MS.
[9] Nobakht M, Moghadam S, and Gu Y (2008) Determination of CO2 Minimum Miscibility Pressure from Measured and Predicted Equilibrium Interfacial Tensions. Ind. Eng. Chem. Res., 47 (22), pp. 8918–8925, DOI: 10.1021/ie800358g.
[10] Ashrafizadeh, S.N., Ghasrodashti, A.A. (2011). “An investigation on the applicability of Parachor model for the prediction of MMP using five equations of state.” Chemical Engineering Research and Design, Vol. 89, pp. 690-696.
[11] Orr, J.F.M., Jessen, K. (2007). “An analysis of the vanishing interfacial tension technique for determination of minimum miscibility pressure.” Fluid Phase Equilibria, Vol. 255, No. 2, pp. 99 - 109.
[12] Jessen, K, Orr J.F.M. (2008). “On interfacial- tension measurements to estimate minimum miscibility pressures.” Society of Petroleum Engineers. DOI: 10.2118/110725-PA.
[13] Teklu T.W., Alharthy, N., Kazemi, H., Yin, X., Graves, R.M. (2014). “Vanishing interfacial tension algorithm for MMP determination in unconventional reservoirs.” Society of Petroleum Engineers. DOI: 10.2118/169517-MS.
[14] Ayirala, S.C. (2005). Measurement and modeling of fluid-fluid miscibility in multicomponent hydrocarbon systems. PhD Dissertation, Louisi ana State University, Baton Rouge, Louisiana.
[15] Sequeira, D.S. (2006). Compositional effects on gas-oil interfacial tension and miscibility at reservoir conditions. MS Thesis, Louisiana State University, Baton Rouge, Louisiana.
[16] Sequeira, D.S., Ayirala, S.C., Rao, D.N. (2008). “Reservoir condition measurements of compositional effects on gas-oil interfacial tension and miscibility.” Society of Petroleum Engineers. DOI: 10.2118/113333-MS.
[17] Saini, D., Rao, D.N. (2010). “Experimental determination of minimum miscibility pressure (MMP) by gas/oil IFT measurements for a gas injection EOR project.” Society of Petroleum Engineers. DOI: 10.2118/132389-MS.
[18] Georgiadis, A., Llovell, F., Bismarck, A., Blas, F.J., Galindo, A., Maitland, G.C., Martin Trusler, J.P., Jackson, G. (2010). “Interfacial tension measurements and modelling of (carbon dioxide + n-alkane) and (carbon dioxide + water) binary mixtures at elevated pressures and temperatures.” Journal of Supercritical Fluids, Vol. 55, pp. 743- 754. | ||
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