A numerical model of transient thermal transport phenomena in a high-temperature solid-gas reacting system for CO2 capture applications
暂无分享,去创建一个
[1] A. Steinfeld,et al. Heterogeneous thermochemical decomposition under direct irradiation , 2004 .
[2] E. Milke,et al. Thermochemical data of elements and compounds , 1999 .
[3] M. Kaviany. Principles of heat transfer in porous media , 1991 .
[4] Stephen A. Rackley,et al. Carbon Capture and Storage , 2009 .
[5] W. Lipiński,et al. Heterogeneous thermochemical decomposition of a semi-transparent particle under direct irradiation , 2011 .
[6] David W. Pershing,et al. Mathematical model for the flash calcination of dispersed CaCO3 and Ca(OH)2 particles , 1989 .
[7] Michael F. Modest,et al. CHAPTER 22 – INVERSE RADIATIVE HEAT TRANSFER , 2003 .
[8] L. Fan,et al. Carbonation−Calcination Cycle Using High Reactivity Calcium Oxide for Carbon Dioxide Separation from Flue Gas , 2002 .
[9] Carl L. Yaws,et al. Transport properties of chemicals and hydrocarbons : viscosity, thermal conductivity, and diffusivity of C1 to C100 organics and Ac to Zr inorganics , 2014 .
[10] Wojciech Lipiński,et al. Thermodynamic analysis of solar thermochemical CO2 capture via carbonation/calcination cycle with heat recovery , 2012 .
[11] Johannes Khinast,et al. Decomposition of limestone: The influence of CO2 and particle size on the reaction rate , 1996 .
[12] M. Q. Brewster,et al. The Optical Constants of Coal, Char, and Limestone , 1984 .
[14] W. Lipiński,et al. Transient temperature and thermal stress profiles in semi-transparent particles under high-flux irradiation , 2007 .
[15] Wojciech Lipiński,et al. TRANSIENT RADIATION HEAT TRANSFER WITHIN A NONGRAY NONISOTHERMAL ABSORBING-EMITTING-SCATTERING SUSPENSION OF REACTING PARTICLES UNDERGOING SHRINKAGE , 2005 .
[16] Daniel J. Keene,et al. A Model of Transient Heat and Mass Transfer in a Heterogeneous Medium of Ceria Undergoing Nonstoichiometric Reduction , 2013 .
[17] I. Barin. Thermochemical data of pure substances , 1989 .
[18] W. Lipiński,et al. Heterogeneous Thermochemical Decomposition of a Semi-Transparent Particle Under High-Flux Irradiation—Changing Grain Size Versus Shrinking Core Models , 2012 .
[19] Victor Rudolph,et al. Modeling of the carbonation behavior of a calcium based sorbent for CO2 capture , 2012 .
[20] T. .. Ingraham,et al. Kinetic studies on the thermal decomposition of calcium carbonate , 1963 .
[21] R. H. Borgwardt. Calcination kinetics and surface area of dispersed limestone particles , 1985 .
[22] L. Dombrovsky. THE USE OF TRANSPORT APPROXIMATION AND DIFFUSION-BASED MODELS IN RADIATIVE TRANSFER CALCULATIONS , 2012 .
[23] Carl L. Yaws,et al. Handbook of Transport Property Data: Viscosity, Thermal Conductivity, and Diffusion Coefficients of Liquids and Gases , 1995 .
[24] D. D. Perlmutter,et al. A random pore model for fluid‐solid reactions: II. Diffusion and transport effects , 1981 .
[25] B. R. Stanmore,et al. Review—calcination and carbonation of limestone during thermal cycling for CO2 sequestration , 2005 .
[26] J. Wilcox. Introduction to Carbon Capture , 2012 .
[27] Howard J. Herzog,et al. Carbon Dioxide Capture and Storage , 2009 .
[28] N. Wakao,et al. Effect of fluid dispersion coefficients on particle-to-fluid heat transfer coefficients in packed beds , 1978 .
[29] Antonio B. Fuertes,et al. Kinetics of thermal decomposition of limestone particles in a fluidized bed reactor , 1993 .
[30] M. Modest. Radiative heat transfer , 1993 .
[31] W. Lipiński,et al. Towards Solar Thermochemical Carbon Dioxide Capture via Calcium Oxide Looping: A Review , 2014 .
[32] C. Geankoplis,et al. Transport Processes and Separation Process Principles , 2003 .
[33] John P. Longwell,et al. Product Layer Diffusion during the Reaction of Calcium Oxide with Carbon Dioxide , 1999 .
[34] Z. Kam,et al. Absorption and Scattering of Light by Small Particles , 1998 .
[35] B. Khoshandam,et al. Mathematical modeling of CO2 removal using carbonation with CaO: The grain model , 2010 .
[36] A. Steinfeld,et al. Kinetic analysis of the carbonation reactions for the capture of CO2 from air via the Ca(OH)2–CaCO3–CaO solar thermochemical cycle , 2007 .
[37] S. Fonti,et al. Carbonates and coated particles on Mars , 2000 .
[38] W. Beckman,et al. Solar Engineering of Thermal Processes , 1985 .
[39] D. D. Perlmutter,et al. A random pore model for fluid‐solid reactions: I. Isothermal, kinetic control , 1980 .
[40] S. Whitaker. The method of volume averaging , 1998 .
[41] S. Turns. Introduction to Combustion , 1995, Aerothermodynamics and Jet Propulsion.
[42] L. Rybach,et al. Handbook of Terrestrial Heat-Flow Density Determination , 1988 .
[43] P. Foscolo,et al. Carbon dioxide capture with dolomite: A model for gas–solid reaction within the grains of a particulate sorbent , 2009 .
[44] J. C. Abanades. The maximum capture efficiency of CO2 using a carbonation/calcination cycle of CaO/CaCO3 , 2002 .
[45] M. Hartman,et al. Calcination of calcium-based sorbents at pressure in a broad range of CO2 concentrations , 2003 .
[46] S. Whitaker. Forced convection heat transfer correlations for flow in pipes, past flat plates, single cylinders, single spheres, and for flow in packed beds and tube bundles , 1972 .
[47] W. Steen. Absorption and Scattering of Light by Small Particles , 1999 .
[48] D. W. Johnson,et al. The effects of sample size and heating rate on the kinetics of the thermal decomposition of CaCO3 , 1973 .
[49] J. Giddings,et al. NEW METHOD FOR PREDICTION OF BINARY GAS-PHASE DIFFUSION COEFFICIENTS , 1966 .
[50] B. E. Eckbo,et al. Appendix , 1826, Epilepsy Research.
[51] J. Szekely,et al. A changing grain size model for gas—solid reactions , 1979 .
[52] Frank P. Incropera,et al. Fundamentals of Heat and Mass Transfer , 1981 .
[53] A. Steinfeld,et al. Tomographic Characterization of a Semitransparent-Particle Packed Bed and Determination of its Thermal Radiative Properties , 2009 .
[54] D. D. Perlmutter,et al. Effect of the product layer on the kinetics of the CO2‐lime reaction , 1983 .