[1] Handa, Y.P., Hawkins, R.E., Murray, J.J., "Calibration and testing of a tian-calvet heat-flow calorimeter enthalpies of fusion and heat capacities for ice and tetrahydrofuran hydrate in the range 85 to 270K", J. Chem. Thermodyn., 16, 623-632 (1984). [2] Handa, Y.P., "Calorimeter determinations of the composi tions, enthalpies of dissociation, and heat capacities in the range 85 to 270 K for clathrate hydrates of xenon and krypton", J. Chem. Thermodyn., 18, 891-902 (1986). [3] Handa, Y.P., "A calorimeter study of naturally occurring gas hydrates", Ind. Eng. Chem. Res., 27, 872-874 (1988). [4] Lievois, J.S., Perkins, R., Martin, R.J., Kobayashi, R., "Development of an automated, high pressure heat flux calorimeter and its application to measure the heat of dis sociation and hydrate numbers of methane hydrate", Fluid Phase Equil., 59, 73-97 (1990). [5] Rueff, R.M., Sloan, E.D., "Heat capacity and heat of dis sociation of methane hydrates", AIChE J., 34, 1468-1476 (1988). [6] Sloan, E.D., Clathrate Hydrates of Natural Gas, Marcel Dekker, New York (1990). [7] Stern, L., Kirby, S.H., "Polycrystalline methane hydrate: Synthesis from superheated ice, and low-temperature me chanical properties", Energy Fuels, 12, 201-211 (1998). [8] Hwang, M.J., Wright, D.A., Kapur, A., Holder, G.D., "An experimental study of crystallization and crystal growth of methane hydrates from melting ice", J. Inclusion Phenom. Mol. Recognit. Chem., 8, 103-116 (1990).
|