Measuring Interfacial Tension between Brine and Carbon Dioxide in Geological CO2 Sequestration Conditions using Pendant Bubble Methods
Park, Gyuryeong;An, Hyejin;Kim, Seon-ok;Wang, Sookyun;
Department of Energy Resources Engineering, Pukyong National University;Department of Energy Resources Engineering, Pukyong National University;Department of Energy Resources Engineering, Pukyong National University;Department of Energy Resources Engineering, Pukyong National University;
1. Aggelopoulos, C.A., Robin, M., Perfetti, E., and Vizika, O., 2010, $CO_2$/$CaCl_2$ solution interfacial tensions under $CO_2$ geological storage conditions: influence of cation valence on interfacial tension, Adv. Water Resour., 33, 691-697.
2. Aggelopoulos, C.A., Robin, M., and Vizika, O., 2011, Interfacial tension between $CO_2$ and brine (NaCl + $CaCl_2$) at elevated pressures and temperatures: The additive effect of different salts, Adv. Water Resour., 34, 505-511.
3. Andreas, J.M., Hauser, E.A., and Tucker, W.B., 1938, Boundary tension by pendant drops, J. Phys. Chem., 42, 1001-1019.
4. Akiba, H. and Ohmura, R., 2016, Surface tension between $CO_2$ gas and tetra-n-butylammonium bromide aqueous solution, J. Chem. Thermodyn., 92, 72-75.
5. Arashiro, E.A. and Demarquette, N.R., 1999, Use of the pendant drop method to measure interfacial tension between molten polymers, Mat. Res., 2(1), 23-32.
6. Bachu and Bennion, 2009, Dependence of $CO_2$-brine interfacial tension on aquifer pressure, temperature and water salinity, Energy Procedia, 1(1), 3157-3164.
7. Chalbaud, C., Robin, M., Lombard, J.-M., Bertin, H., and Egerman, P., 2010, Brine/$CO_2$ interfacial properties and effects on $CO_2$ storage in deep saline aquifers, Oil Gas Sci. Technol., 65(4), 541-555.
8. Chiquet, P., Broseta, D., and Thibeau, S., 2007, Wettability alteration of caprock minerals by carbon dioxide, Geofluids, 7, 112-122.
9. Duana, Z. and Sun, R., 2003, An improved model calculating $CO_2$ solubility in pure water and aqueous NaCl solutions from 273 to 533 K and from 0 to 2000 bar, Chem. Geol., 193, 257-271.
10. Esponoza, D.N. and Santamarina, J.C., 2010, Water-$CO_2$-mineral systems: Interfacial tension, contact angle, and diffusion-Implications to $CO_2$ geological storage, Water Resour. Res., 46, W07537, doi:10.1029/2009WR008634.
11. Grigull, U. and Schmidt, E., 1979, Properties of Water and Steam in Si-Units. Second Revised and Updated Printing, Springer-Verlag, Berlin, 190 p.
12. IPCC (Intergovernmental Panel on Climate Change), 2005, Carbon dioxide capture and storage, Cambridge University Press, Cambridge, 431p.
13. Li, X., Boek, E., Maitland, G.C., and Trusler, J.P.M., 2012, Interfacial tension of (Brines + $CO_2$): (0.864 NaCl + 0.136 KCl) at temperatures between (298 and 448) K, pressures between (2 and 50) MPa, and total molalities of (1 to 5) $mol{\cdot}kg^{-1}$. J. Chem. Eng. Data, 57(4), 1078-1088.
14. Macleod, D.B., 1923, On a relation between surface tension and density, T. Faraday Soc., 19, 38-41.
15. Misak, M.D., 1968, Equations for determining 1/H versus S values in computer calculations of interfacial tension by the pendent drop method, J. Colloid Interface Sci., 27(1), 141-142.
16. Shah, V., Broseta, D., Mouronval, G., and Montel, F., 2008, Water/acid gas interfacial tensions and their impact on acid gas geological storage, Int. J. Greenh. Gas Con., 2, 594-604.
17. Song, Y., Kim, H.C., and Lee, T.J., 2010, Geothermal development in Korea: Country Update 2005-2009, World Geothermal Congress 2010, Bali, Indonesia, April 25-29, 241 p.
18. Wiebe, R., 1941, The binary system carbon dioxide-water under pressure, Chem. Rev. 29, 475-489.
19. Yang, D., Tontiwachwuthikul, P., and Gu Y., 2005, Interfacial interactions between reservoir brine and $CO_2$ at high pressure and elevated temperature, Energ. Fuel., 19, 216-223.