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References [1] K.S. Walton, M.D. LeVan, A novel adsorption cycle for CO2 recovery: Ex- perimental and theoretical investigations of a temperature swing compression process, Separation Science and Technology, 41 (3) (2006) 485-500. [2] J.E. Finn, K.R. Sridhar, C.P. McKay, Utilization of martian atmosphere con- stituents by temperature-swing adsorption, Journal of the British Interplanetary Society, 49 (11) (1996) 423-430. [3] L.M. Mulloth, J.E. Finn, A solid-state compressor for integration of CO2 removal and reduction assemblies, SAE International 2000-01-2352. [4] R.P. Hoover, P. C. Wankat, Gas compression using temperature swing adsorp- tion, Separation Science and Technology 37 (14) (2002) 3187-3199. [5] L. Mulloth, M. Varghese, B. Luna, J. Hogan, M.D. LeVan, J.R. Moate, Devel- opment of a low-power CO2 removal and compression system for closed-loop air revitalization in future spacecraft, SAE International, Paper 2005-01-2944 (2005) 1-8. [6] D.J. Miles, S.V. Shelton, Design and testing of a solid-sorption heat-pump sys- tem, Applied Thermal Engineering 16 (5) (1996) 389-394. [7] B.K. Sward, M.D. LeVan, F. Meunier, Adsorption heat pump modeling: the thermal wave process with local equilibrium, Applied Thermal Engineering 20 (2000) 759-780. [8] J. M ́erel, M. Clausse, F. Meunier, Carbon dioxide capture by indirect thermal swing adsorption using 13X zeolite, Environmental Progress 25 (4) (2006) 327- 333. 48PDF Image | TEMPERATURE SWING ADSORPTION COMPRESSION AND MEMBRANE SEPARATIONS
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