[1] Y.F. Makogon, S.A. Holditch, T.Y. Makogon, Natural gas-hydrates-A potential energy source for the 21st century, J. Pet. Sci. Eng. 56(1-3) (2007) 14-31.[2] J. Zhao, D. Liu, M. Yang, Y. Song, Analysis of heat transfer effects on gas production from methane hydrate by depressurization, Int. J. Heat Mass Transf. 77(2014) 529-541.[3] S.S. Park, N.J. Kim, Study on methane hydrate formation using ultrasonic waves, J. Ind. Eng. Chem. 19(5) (2013) 1668-1672.[4] Y. Wang, J. Feng, X. Li, Y. Zhang, Z. Chen, Fluid flow mechanisms and heat transfer characteristics of gas recovery from gas-saturated and water-saturated hydrate reservoirs, Int. J. Heat Mass Transf. 118(2017) 1115-1127.[5] Y. Wang, J. Feng, X. Li, Y. Zhang, Experimental and modeling analyses of scaling criteria for methane hydrate dissociation in sediment by depressurization, Appl. Energy 181(2016) 299-309.[6] Y. Wang, J. Feng, X. Li, Y. Zhang, G. Li, Analytic modeling and large-scale experimental study of mass and heat transfer during hydrate dissociation in sediment with different dissociation methods, Energy 90(2015) 1931-1948.[7] J. Zhao, L. Yao, Y. Song, K. Xue, C. Cheng, Y. Liu, Y. Zhang, In situ observations by magnetic resonance imaging for formation and dissociation of tetrahydrofuran hydrate in porous media, Magn. Reson. Imaging 29(2011) 281-288.[8] M. Yang, Y. Song, L. Jiang, Y. Zhao, X. Ruan, Y. Zhang, S. Wang, Hydrate-based technology for CO2 capture from fossil fuel power plants, Appl. Energy 116(2014) 26-40.[9] Y. Song, X. Wang, M. Yang, L. Jiang, Y. Liu, B. Dou, J. Zhao, S. Wang, Study of selected factors affecting hydrate-based carbon dioxide separation from simulated fuel gas in porous media, Energy Fuel 27(2013) 3341-3348.[10] Y. Wang, X.S. Li, G. Li, Y. Zhang, J.C. Feng, Experimental investigation into scaling models of methane hydrate reservoir, Appl. Energy 115(2014) 47-56.[11] M. Yang, Z. Fu, Y. Zhao, L. Jiang, J. Zhao, Y. Song, Effect of depressurization pressure on methane recovery from hydrate-gas-water bearing sediments, Fuel 166(2016) 419-426.[12] M. Yang, W. Jing, J. Zhao, Z. Ling, Y. Song, Promotion of hydrate-based CO2 capture from flue gas by additive mixtures (THF (tetrahydrofuran) plus TBAB (tetra-nbutyl ammonium bromide)), Energy 106(2016) 546-553.[13] E. Hammerschmidt, Formation of gas hydrates in natural gas transmission lines, Ind. Eng. Chem. 26(8) (1934) 851-855.[14] J.S. Gudmundsson, V. Andersson, O. Levik, Gas storage and transport using hydrates, Offshore Mediterranean Conference, Ravenna, 1997.[15] H. Kanda, Economic study on natural gas transportation with natural gas hydrate pellets, 23rd World Gas Conference, Amsterdam, 2006.[16] J. Javanmardi, M. Moshfeghian, Energy consumption and economic evaluation of water desalination by hydrate phenomenon, Appl. Therm. Eng. 23(7) (2003) 845-857.[17] T. Ogawa, T. Ito, K. Watanabe, K. Tahara, R. Hiraoka, J. Ochiai, R. Ohmura, Y.H. Mori, Development of a novel hydrate-based refrigeration system:A preliminary overview, Appl. Therm. Eng. 26(17-18) (2006) 2157-2167.[18] Y. Zhao, S. Fan, X. Ge, Y. Liu, K. Guo, X. Liu, D. Liang, B. Shu, Formation process and fractal growth model of HCFC-141b refrigerant gas hydrate, Sci. China B Chem. 45(2) (2002) 216-224.[19] J. Chappellaz, J.M. Barnola, D. Raynaud, Y.S. Korotkevich, C. Lorius, Ice-core record of atmospheric methane over the past 160000 years, Nature 345(6271) (1990) 127-131.[20] R. Rothwell, J. Thomson, G. Kahler, Low-sea-level emplacement of a very large Late Pleistocene ‘megaturbidite’ in the western Mediterranean Sea, Nature 392(6674) (1998) 377-380.[21] Y.F. Makogon, S.A. Holditch, J.C. Holste, T.Y. Makogon, Y.H. Mori, Aspects of gas hydrate kinetics, Proceedings of the 4th International Conference on Gas Hydrates, Yokohama, 2002.[22] X. Wang, A.J. Schultz, Y. Halpern, Kinetics of ice particle conversion to methane hydrate, Proceedings of the 4th International Conference on Gas Hydrate, Yokohama, 2002.[23] R.M. Barrer, A.V.J. Edge, Gas hydrates containing argon, krypton and xenon:kinetics and energetics of formation and equilibria, Proc. R. Soc. Lond. A Math. Phys. Eng. Sci. 300(1967) 1-24.[24] M.J. Hwang, D.A. Wright, A. Kapur, G.D. Holder, An experimental study of crystallization and crystal growth of methane hydrates from melting ice, J. Incl. Phenom. Mol. Recognit. Chem. 8(1-2) (1990) 103-116.[25] E.D. Sloan, F. Fleyfel, A molecular mechanism for gas hydrate nucleation from ice, AICHE J. 37(9) (1991) 1281-1292.[26] M. Rafiei, M. Boshtam, N. Sarrafzadegan, S. Asgary, G.A. Naderi, Growth kinetics of CO2 hydrate just below melting point of ice, J. Cryst. Growth 234(1) (2002) 220-226.[27] J.J. Rivera, K.C. Janda, Ice particle size and temperature dependence of the kinetics of propane clathrate hydrate formation, J. Phys. Chem. C 116(36) (2012) 19062-19072.[28] P.C. Chen, W.L. Huang, L.A. Stern, Methane hydrate synthesis from ice:influence of pressurization and ethanol on optimizing formation rates and hydrate yield, Energy Fuel 24(4) (2010) 2390-2403.[29] J. Verrett, P. Servio, Evaluating surfactants and their effect on methane mole fraction during hydrate growth, Ind. Eng. Chem. Res. 51(40) (2012) 13144-13149.[30] S. He, D. Liang, D. Li, L. Ma, The formation of natural gas hydrate from SDS-solutions and decomposition by microwave heating in a static reactor, Pet. Sci. Technol. 31(16) (2013) 1655-1664.[31] Y. Zhong, R. Rogers, Surfactant effects on gas hydrate formation, Chem. Eng. Sci. 55(19) (2000) 4175-4187.[32] J.A. Ripmeester, J.S. Tse, C.I. Ratcliffe, B.M. Powell, A new clathrate hydrate structure, Nature 325(6100) (1987) 135-136.[33] E.D. Sloan, Fundamental principles and applications of natural gas hydrates, Nature 426(6964) (2003) 353-363.[34] B. Wu, Y. Duan, H. Lei, H. Zhang, Filling rates of methane hydrate in water-sediment system, Nat. Gas Ind. 24(2004) 27-29(in Chinese).[35] Y. Wang, J.C. Feng, X.S. Li, Y. Zhang, G. Li, Large scale experimental evaluation to methane hydrate dissociation below quadruple point in sandy sediment, Appl. Energy 162(2016) 372-381.[36] L.A. Stern, W.B. Durham, Peculiarities of methane clathrate hydrate formation and solid-state deformation, including possible superheating of water ice, Science 273(5283) (1996) 1843-1847.[37] D.K. Staykova, Kinetic Studies of Methane-Hydrate Formation from Ice Ih (Dissertation) Georg-August-University of Gottingen, 2004.[38] P. Englezos, Clathrate hydrates, Ind. Eng. Chem. Res. 32(7) (1993) 1251-1274.[39] I.L. Moudrakovski, C.I. Ratcliffe, G.E. Mclaurin, A.B. Simard, J.A. Ripmeester, Hydrate layers on ice particles and superheated ice:a 1H NMR microimaging study, J. Phys. Chem. A 103(26) (1999) 4969-4972.[40] R. Rogers, C. Kothapalli, M. Lee, Influence of microbes on gas hydrate formation in porous media, Fourth International Conference on Gas Hydrate, Japan, 2002.[41] J. Yoslim, P. Englezos, The effect of surfactant on the morphology of methane/propane clathrate hydrate crystals, Proceedings of the 6th International Conference Gas Hydrates, Vancouver, University of British Columbia, Canada, 2008.[42] P. Pirzadeh, P.G. Kusalik, Molecular insights into clathrate hydrate nucleation at an ice-solution interface, J. Am. Chem. Soc. 135(19) (2013) 7278-7287.[43] P.J. Wooldridge, H.H. Richardson, J.P. Devlin, Mobile Bjerrum defects:A criterion for ice-like crystal growth, J. Chem. Phys. 87(7) (1987) 4126-4131. |