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Original Articles

Induction time, storage capacity, and rate of methane hydrate formation in the presence of SDS and silver nanoparticles

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References

  • Adisasmito, S., Frank III, R. J., and Sloan Jr, E. D. (1991). Hydrates of carbon dioxide and methane mixtures, J. Chem. Eng. Data, 36, 68–71.
  • Akhavan-Behabadi, M. A., Pakdaman, M. F., and Ghazvini, M. (2012). Experimental investigation on the convective heat transfer of nanofluid flow inside vertical helically coiled tubes under uniform wall temperature condition, Int. Commun. Heat Mass Transfer, 39, 556–564.
  • Arjang, S., Manteghian, M., and Mohammadi, A. (2013). Effect of synthesized silver nanoparticles in promoting methane hydrate formation at 4.7 MPa and 5.7 MPa, Chem. Eng. Res. Des., 91, 1050–1054.
  • Bi, Y., Guo, T., Zhang, L., Zhang, H., and Chen, L. (2009). Experimental study on cool release process of gas-hydrate with additives, Energy Buildings, 41, 120–124.
  • Chatti, I., Delahaye, A., Fournaison, L., and Petitet, J.-P. (2005). Benefits and drawbacks of clathrate hydrates: A review of their areas of interest, Energy Convers. Manage., 46, 1333–1343.
  • Duangthongsuk, W., and Wongwises, S. (2009). Heat transfer enhancement and pressure drop characteristics of TiO2–water nanofluid in a double-tube counter flow heat exchanger, Int. J. Heat Mass Transfer, 52, 2059–2067.
  • Englezos, P., Kalogerakis, N., Dholabhai, P. D., and Bishnoi, P. R. (1987). Kinetics of formation of methane and ethane gas hydrates, Chem. Eng. Sci., 42, 2647–2658.
  • Eslamimanesh, A., Mohammadi, A. H., Richon, D., Naidoo, P., and Ramjugernath, D. (2012). Application of gas hydrate formation in separation processes: A review of experimental studies, J. Chem. Thermodyn., 46, 62–71.
  • Fazlali, A., Kazemi, S. A., Keshavarz-Moraveji, M., and Mohammadi, A. H. (2013). Impact of different surfactants and their mixtures on methane hydrate formation, Energy Technol., 1, 471–477.
  • Ganji, H., Manteghian, M., and Rahimi Mofrad, H. (2007a). Effect of mixed compounds on methane hydrate formation and dissociation rates and storage capacity, Fuel Process. Technol., 88, 891–895.
  • Ganji, H., Manteghian, M., Sadaghiani Zadeh, K., Omidkhah, M. R., and Rahimi Mofrad, H. (2007b). Effect of different surfactants on methane hydrate formation rate, stability and storage capacity, Fuel, 86, 434–441.
  • Javanmardi, J., and Moshfeghian, M. (2003). Energy consumption and economic evaluation of water desalination by hydrate phenomenon, Appl. Therm. Eng., 23, 845–857.
  • Ji, C., Ahmadi, G., and Smith, D. H. (2001). Natural gas production from hydrate decomposition by depressurization, Chem. Eng. Sci., 56, 5801–5814.
  • Kakati, H., Mandal, A., and Laik, S. (2016). Promoting effect of Al2O3/ZnO-based nanofluids stabilized by SDS surfactant on CH4 + C2H6 + C3H8 hydrate formation, J. Ind. Eng. Chem., 35, 357–368.
  • Kumar, A., Sakpal, T., Linga, P., and Kumar, R. (2013). Influence of contact medium and surfactants on carbon dioxide clathrate hydrate kinetics, Fuel, 105, 664–671.
  • Lee, J. D., Kim, H. C., Kim, Y. S., Kim, Y. D., and Lee, M. S. (2007). Synthesis of nanosized TiO2–Ag–SiO2 sols by modified sol–gel method and their application for methane hydrate formation, Solid State Phenom., 124–126, 1059–1062.
  • Li, J., Liang, D., Guo, K., Wang, R., and Fan, S. (2006). Formation and dissociation of HFC134a gas hydrate in nano-copper suspension, Energy Convers. Manage., 47, 201–210.
  • Lirio, C. F. D. S., Pessoa, F. L. P., and Uller, A. M. C. (2013). Storage capacity of carbon dioxide hydrates in the presence of sodium dodecyl sulfate (SDS) and tetrahydrofuran (THF), Chem. Eng. Sci., 96, 118–123.
  • Manteghian, M., Mousavi Safavi, S. M., and Mohammadi, A. (2013). The equilibrium conditions, hydrate formation and dissociation rate and storage capacity of ethylene hydrate in presence of 1,4-dioxane, Chem. Eng. J., 217, 379–384.
  • Mohammadi, A., Manteghian, M., Haghtalab, A., Mohammadi, A. H., and Rahmati-Abkenar, M. (2014). Kinetic study of carbon dioxide hydrate formation in presence of silver nanoparticles and SDS, Chem. Eng. J., 237, 387–395.
  • Mohammadi, M., Haghtalab, A., and Fakhroueian, Z. (2016). Experimental study and thermodynamic modeling of CO2 gas hydrate formation in presence of zinc oxide nanoparticles, J. Chem. Thermodyn., 96, 24–33.
  • Naik, M. T., Janardana, G. R., and Sundar, L. S. (2013). Experimental investigation of heat transfer and friction factor with water–propylene glycol based CuO nanofluid in a tube with twisted tape inserts, Int. Commun. Heat Mass Transfer, 46, 13–21.
  • Najibi, H., Mirzaee Shayegan, M., and Heidary, H. (2015). Experimental investigation of methane hydrate formation in the presence of copper oxide nanoparticles and SDS, J. Nat. Gas Sci. Eng., 23, 315–323.
  • Ohgaki, K., Takano, K., Sangawa, H., Matsubara, T., and Nakano, S. (1996). Methane exploitation by carbon dioxide from gas hydrates. Phase equilibria for CO2–CH4 mixed hydrate system, J. Chem. Eng. Jpn., 29, 478–483.
  • Park, S.-S., and Kim, N.-J. (2010). Multi-walled carbon nano tubes effects for methane hydrate formation, 2010 The 2nd International Conference on Computer and Automation Engineering (ICCAE), Singapore, pp. 294–297.
  • Qiyong, X., and Jiaoju, G. (2011). Reduction of CO2 emission using bioreactor technology for waste management in China, Energy Procedia, 5, 1026–1031.
  • Rogers, R., Zhang, G., Dearman, J., and Woods, C. (2007). Investigations into surfactant/gas hydrate relationship, J. Petrol. Sci. Eng., 56, 82–88.
  • Sharma, K. V., Sundar, L. S., and Sarma, P. K. (2009). Estimation of heat transfer coefficient and friction factor in the transition flow with low volume concentration of Al2O3 nanofluid flowing in a circular tube and with twisted tape insert, Int. Commun. Heat Mass Transfer, 36, 503–507.
  • Sloan, D. (2011). Natural Gas Hydrates in Flow Assurance, Gulf Professional Publishing, Boston, pp. 1–11.
  • Sloan, J. E. D., and Koh, K. A. (2008). Clathrate Hydrates of Natural Gases, 3rd ed., CRC Press, Taylor & Francis Group, New York.
  • Smith, J. M., van Ness, H., and Abbott, M. (2001). Introduction to Chemical Engineering Thermodynamics, McGraw-Hill, New York.
  • Sundar, L. S., and Sharma, K. V. (2010). Heat transfer enhancements of low volume concentration Al2O3 nanofluid and with longitudinal strip inserts in a circular tube, Int. J. Heat Mass Transfer, 53, 4280–4286.
  • Tanii, T. (1994). Energy storage: Low temperature heat storage (use of clathrate), J. Jpn. Soc. Mech. Eng., 97, 925–927.
  • Torré, J.-P., Dicharry, C., Ricaurte, M., Daniel-David, D., and Broseta, D. (2011). CO2 capture by hydrate formation in quiescent conditions: In search of efficient kinetic additives, Energy Procedia, 4, 621–628.
  • Wongcharee, K., and Eiamsa-ard, S. (2011). Enhancement of heat transfer using CuO/water nanofluid and twisted tape with alternate axis, Int. Commun. Heat Mass Transfer, 38, 742–748.
  • Yu, Y.-s., Zhou, S.-d., Li, X.-s., and Wang, S.-l. (2016). Effect of graphite nanoparticles on CO2 hydrate phase equilibrium, Fluid Phase Equil., 414, 23–28.
  • Zhang, C. S., Fan, S. S., Liang, D. Q., and Guo, K. H. (2004). Effect of additives on formation of natural gas hydrate, Fuel, 83, 2115–2121.
  • Zhang, J., Lo, C., Somasundaran, P., Lu, S., Couzis, A., and Lee, J. (2008). Adsorption of sodium dodecyl sulfate at THF hydrate/liquid interface, J. Phys. Chem. C, 112, 12381–12385.
  • Zhang, J. S., Lee, S., and Lee, J. W. (2007). Kinetics of methane hydrate formation from SDS solution, Ind. Eng. Chem. Res., 46, 6353–6359.

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