An afterburner-powered methane/steam reformer for a solid oxide fuel cells application
暂无分享,去创建一个
[1] R. Reid,et al. The Properties of Gases and Liquids , 1977 .
[2] G. Froment,et al. Methane steam reforming, methanation and water‐gas shift: I. Intrinsic kinetics , 1989 .
[3] A. Bejan,et al. Convection in Porous Media , 1992 .
[4] S. Singhal,et al. Polarization Effects in Intermediate Temperature, Anode‐Supported Solid Oxide Fuel Cells , 1999 .
[5] Khaliq Ahmed,et al. Approach to equilibrium of the water-gas shift reaction on a Ni/zirconia anode under solid oxide fuel-cell conditions , 2001 .
[6] J. Young,et al. Thermodynamic and transport properties of gases for use in solid oxide fuel cell modelling , 2002 .
[7] Tong Seop Kim,et al. Performance analysis of a tubular solid oxide fuel cell/micro gas turbine hybrid power system based on a quasi-two dimensional model , 2005 .
[8] Xianguo Li. Principles of fuel cells , 2005 .
[9] H. Iwai,et al. Comprehensive Numerical Modeling and Analysis of a Cell-Based Indirect Internal Reforming Tubular SOFC , 2006 .
[10] Robert J. Kee,et al. Thermodynamics of SOFC efficiency and fuel utilization as functions of fuel mixtures and operating conditions , 2006 .
[11] E. Wachsman,et al. Three-Dimensional Reconstruction of Porous LSCF Cathodes , 2007 .
[12] Shinji Kimijima,et al. Performance analysis of the SOFC–MGT hybrid system with gasified biomass fuel , 2007 .
[13] Shengyao Jiang,et al. Modeling of the Helium-Heated Steam Reformer for HTR-10 , 2007 .
[14] Yann Bultel,et al. Modeling of a SOFC fuelled by methane: From direct internal reforming to gradual internal reforming , 2007 .
[15] Grzegorz Brus,et al. Numerical modelling of radiative heat transfer in an internal indirect reforming-type SOFC , 2008 .
[16] Shinji Kimijima,et al. Performance analysis for the part-load operation of a solid oxide fuel cell–micro gas turbine hybrid system , 2008 .
[17] Takafumi Nishino,et al. Numerical Analysis of a Cell-Based Indirect Internal Reforming Tubular SOFC Operating With Biogas , 2010 .
[18] Hiroshi Iwai,et al. Numerical simulation of intermediate-temperature direct-internal-reforming planar solid oxide fuel cell , 2011 .
[19] Hiroshi Iwai,et al. Quantitative evaluation of solid oxide fuel cell porous anode microstructure based on focused ion be , 2011 .
[20] Shinji Kimijima,et al. Experimental and numerical analysis of transport phenomena in an internal indirect fuel reforming type Solid Oxide Fuel Cells using Ni/SDC as a catalyst , 2012 .
[21] L. A. Chick,et al. Demonstration of a highly efficient solid oxide fuel cell power system using adiabatic steam reforming and anode gas recirculation , 2012 .
[22] M. Ni. 2D heat and mass transfer modeling of methane steam reforming for hydrogen production in a compact reformer , 2013 .
[23] A. Sciazko,et al. A novel approach to improve the mathematical modelling of the internal reforming process for solid oxide fuel cells using the orthogonal least squares method , 2014 .
[24] Shinji Kimijima,et al. The effect of overpotentials on the transient response of the 300W SOFC cell stack voltage , 2014 .
[25] A. Sciazko,et al. A novel approach to the experimental study on methane/steam reforming kinetics using the Orthogonal Least Squares method , 2014 .
[26] A. Sciazko,et al. An attempt to minimize the temperature gradient along a plug-flow methane/steam reforming reactor by adopting locally controlled heating zones , 2014 .
[27] H. Iwai,et al. Change of an anode's microstructure morphology during the fuel starvation of an anode-supported solid oxide fuel cell , 2015 .
[28] J. Szmyd,et al. Numerical analysis of helium-heated methane/steam reformer , 2016 .
[29] One-Dimensional Modeling of Turbulent Premixed Jet Flames - Comparison to DNS , 2016 .
[30] J. Szmyd,et al. Towards a Thermal Optimization of a Methane/Steam Reforming Reactor , 2016 .