Thermodynamic analysis of hydrogen production via sorption-enhanced steam methane reforming in a new class of variable volume batch-membrane reactor
暂无分享,去创建一个
[1] G. Froment,et al. Steam/CO2 Reforming of Methane. Carbon Filament Formation by the Boudouard Reaction and Gasification by CO2, by H2, and by Steam: Kinetic Study , 2002 .
[2] Sergey Paltsev,et al. The future of U.S. natural gas production, use, and trade , 2011 .
[3] J. A. Ritter,et al. Nonequilibrium Kinetic Model That Describes the Reversible Adsorption and Desorption Behavior of CO2 in a K-Promoted Hydrotalcite-like Compound , 2007 .
[4] David J Campbell,et al. Natural gas plays in the Marcellus Shale: challenges and potential opportunities. , 2010, Environmental science & technology.
[5] Andreas Züttel,et al. Hydrogen as a future energy carrier , 2008 .
[6] Jeffrey Raymond Hufton,et al. Sorption-enhanced reaction process , 1996 .
[7] Dennis Witmer,et al. Thermodynamic analysis of hydrogen production by steam reforming , 2003 .
[8] Ki Bong Lee,et al. Effect of reaction temperature on the performance of thermal swing sorption enhanced reaction process for simultaneous production of fuel cell grade H2 and compressed CO2 from synthesis gas , 2008 .
[9] S. Sircar,et al. Chemisorption of carbon dioxide on potassium-carbonate-promoted hydrotalcite. , 2007, Journal of colloid and interface science.
[10] Nelson A. Kelly,et al. Development of a renewable hydrogen economy: Optimization of existing technologies , 2010 .
[11] V. Utgikar,et al. Transition to hydrogen economy in the United States: A 2006 status report , 2007 .
[12] Marc A. Rosen,et al. Advances in hydrogen production by thermochemical water decomposition: A review , 2010 .
[13] C. H. Bartholomew. Mechanisms of catalyst deactivation , 2001 .
[14] J. A. Ritter,et al. Pressure Dependence of the Nonequilibrium Kinetic Model That Describes the Adsorption and Desorption Behavior of CO2 in K-Promoted Hydrotalcite Like Compound , 2011 .
[15] Christopher W. Jones,et al. Adsorbent materials for carbon dioxide capture from large anthropogenic point sources. , 2009, ChemSusChem.
[16] Andrei G. Fedorov,et al. Comparative Assessment of Batch Reactors for Scalable Hydrogen Production , 2008 .
[17] Shigeyuki Uemiya,et al. Steam reforming of methane in a hydrogen-permeable membrane reactor , 1990 .
[18] Ruud W. van den Brink,et al. Hydrotalcite as CO2 Sorbent for Sorption-Enhanced Steam Reforming of Methane , 2006 .
[19] Ki Bong Lee,et al. Novel Thermal-Swing Sorption-Enhanced Reaction Process Concept for Hydrogen Production by Low-Temperature Steam−Methane Reforming , 2007 .
[20] Jeffrey Raymond Hufton,et al. Sorption‐enhanced reaction process for hydrogen production , 1999 .
[21] Hugo S. Caram,et al. Sorption enhanced reaction process for direct production of fuel-cell grade hydrogen by low temperature catalytic steam–methane reforming , 2010 .
[22] B. Adams,et al. The role of palladium in a hydrogen economy , 2011 .
[23] G. Froment,et al. Methane steam reforming, methanation and water‐gas shift: I. Intrinsic kinetics , 1989 .
[24] K. Riahi,et al. The hydrogen economy in the 21st century: a sustainable development scenario , 2003 .
[25] P. Cobden,et al. High capacity potassium-promoted hydrotalcite for CO2 capture in H2 production , 2012 .
[26] Muhammad Sahimi,et al. Design aspects of the cyclic hybrid adsorbent-membrane reactor (HAMR) system for hydrogen production , 2010 .
[27] P. Cobden,et al. A novel catalyst–sorbent system for an efficient H2 production with in-situ CO2 capture , 2012 .
[28] E. Teller,et al. On a Theory of the van der Waals Adsorption of Gases , 1940 .
[29] Andrei G. Fedorov,et al. Conceptual study of distributed CO2 capture and the sustainable carbon economy. , 2008 .
[30] Alírio E. Rodrigues,et al. CO2 sorption on hydrotalcite and alkali-modified (K and Cs) hydrotalcites at high temperatures , 2008 .
[31] L. Barelli,et al. Hydrogen production through sorption-enhanced steam methane reforming and membrane technology : A review , 2008 .
[32] N. Hutson,et al. High temperature adsorption of CO2 on various hydrotalcite-like compounds , 2008 .
[33] Yulong Ding,et al. Equilibria and kinetics of CO2 adsorption on hydrotalcite adsorbent , 2000 .
[34] O. Okada,et al. Development of Polymer Electrolyte Fuel Cell Cogeneration Systems for Residential Applications , 2001 .
[35] Bernard P. A. Grandjean,et al. Methane steam reforming in asymmetric Pd- and Pd-Ag/porous SS membrane reactors , 1994 .
[36] Nancy Garland,et al. Hydrogen and Fuel Cell Technology: Progress, Challenges, and Future Directions , 2012 .
[37] P. Cobden,et al. Kinetic and structural requirements for a CO2 adsorbent in sorption enhanced catalytic reforming of methane. Part I: Reaction kinetics and sorbent capacity , 2012 .
[38] M. Šarić,et al. Steam reforming of methane in a bench-scale membrane reactor at realistic working conditions , 2012 .
[39] Pablo Marín,et al. Modelling of hydrogen perm-selective membrane reactors for catalytic methane steam reforming , 2012 .
[40] Muhammad Sahimi,et al. Experimental studies of a hybrid adsorbent-membrane reactor (HAMR) system for hydrogen production , 2007 .
[41] J. A. Ritter,et al. State‐of‐the‐Art Adsorption and Membrane Separation Processes for Hydrogen Production in the Chemical and Petrochemical Industries , 2007 .
[42] Ki Bong Lee,et al. Reversible Chemisorbents for Carbon Dioxide and Their Potential Applications , 2008 .
[43] Yulong Ding,et al. Adsorption-enhanced steam–methane reforming , 2000 .
[44] D. Harrison. Sorption-Enhanced Hydrogen Production: A Review , 2008 .