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Design and Operation of Pressure Swing Adsorption Processes

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Design and Operation of Pressure Swing Adsorption Processes ( design-and-operation-pressure-swing-adsorption-processes )

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[126] [127] [128] [129] [130] [131] [132] [133] [134] [135] [136] [137] [138] [139] [140] [141] J. L. Lumley, Coherent Structures in Turbulence, pp. 215–242, in: R.E. Meyer (ed.), Transition and Turbulence, Academic Press: New York, NY, 1981. E. Luna-Ortiz and C. Theodoropoulos, An Input-Output Model Reduction-Based Op- timization Scheme for Large-Scale Systems, Multiscale Model. Simul. 4 (2005), no. 2, 691–708. H. V. Ly and H. T. Tran, Modeling and Control of Physical Processes Using Proper Orthogonal Decomposition, Math. Comput. Model. 33 (2001), no. 1-3, 223–236. A. Malek and S. Farooq, Study of a Six-Bed Pressure Swing Adsorption Process, AIChE J. 43 (1997), no. 10, 2509–2523. G. Q. Miller and J. St ̈ocker, Selection of a Hydrogen Separation Process, NPRA Annual Meeting: San Francisco, California, 1989. J. Moehlis, T. R. Smith, P. Holmes, and H. Faisst, Models for Turbulent Plane Couette Flow using the Proper Orthogonal Decomposition, Phys. Fluids 14 (2002), no. 7, 2493– 2507. B.-K. Na, K.-K. Koo, H.-M. Eum, H. Lee, and H. Song, CO2 Recovery from Flue Gas by PSA Process using Activated Carbon, Korean J. Chem. Eng. 18 (2001), no. 2, 220–227. B.-K. Na, H. Lee, K.-K. Koo, and H. K. Song, Effect of Rinse and Recycle Methods on the Pressure Swing Adsorption Process To Recover CO2 from Power Plant Flue Gas Using Activated Carbon, Ind. Eng. Chem. Res. 41 (2002), no. 22, 5498–5503. NETL/DOE, The Cost and Performance Baseline for Fossil Energy Power Plants study, Volume 1: Bituminous Coal and Natural Gas to Electricity, Tech. report, National En- ergy Technology Laboratory, Department of Energy, USA, May, 2007. P.-y. Nie and C.-f. Ma, A Trust-region Filter Method for General Non-linear Program- ming, Appl. Math. Comput. 172 (2006), 1000–1017. D. Nikoli`c, A. Giovanoglou, M. C. Georgiadis, and E. S. Kikkinides, Generic Modeling Framework for Gas Separations Using Multibed Pressure Swing Adsorption Processes, Ind. Eng. Chem. Res. 47 (2008), no. 9, 3156–3169. D. Nikoli`c, E. S. Kikkinides, and M. C. Georgiadis, Optimization of Multibed Pressure Swing Adsorption Processes, Ind. Eng. Chem. Res. 48 (2009), no. 11, 5388–5398. S. Nilchan, The Optimisation of Periodic Adsorption Processes, Ph.D. thesis, Imperial College of Science, Technology, and Medicine, London, UK, 1997. S. Nilchan and C. C. Pantelides, On the Optimisation of Periodic Adsorption Processes, Adsorption 4 (1998), no. 2, 113–147. J. Nocedal and S. J. Wright, Numerical Optimization, Springer-Verlag: New York, NY, 1999. H. M. Park and D. H. Cho, The Use of the Karhunen-Lo ́eve Decomposition for the Modeling of Distributed Parameter Systems, Chem. Eng. Sci. 51 (1996), no. 1, 81–98. BIBLIOGRAPHY BIBLIOGRAPHY 200

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