Modeling of tritium release from ceramic breeders: Status and some implications for next-step devices
暂无分享,去创建一个
A. R. Raffray | Michael C. Billone | C. H. Wu | G. Federici | M. Billone | G. Federici | A. Raffray | C. Wu
[1] S. Tam,et al. Tritium percolation through porous ceramic breeders - A random-lattice approach☆ , 1991 .
[2] J. Kopasz,et al. Progress in the knowledge of the mechanism of tritium release from lithium ceramics , 1991 .
[3] M. Abdou,et al. Analysis of tritium release from LiAlO2 in the TEQUILA experiment, using the MISTRAL code , 1991 .
[4] M.A. Abdou,et al. Design and analysis of the Prometheus wetted wall IFE reactor cavity , 1991, [Proceedings] The 14th IEEE/NPSS Symposium Fusion Engineering.
[5] Mohamed A. Abdou,et al. ITER test programme , 1991 .
[6] M. Billone,et al. Tritium Retention and Release Analysis for the U.S.-ITER Driver Blanket , 1991 .
[7] A. K. Fischer. Processes for Desorption from LiAlO 2 Treated with H 2 as Studied by Temperature Programmed Desorption , 1991 .
[8] O. D. Slagle,et al. In-situ tritium recovery from Li sub 2 O irradiated in fast neutron flux: BEATRIX-II initial results , 1991 .
[9] C. E. Singer,et al. The ARIES-I Tokamak Reactor Study† , 1991 .
[10] A. Ying,et al. Tritium Analysis for the US-ITER Solid Breeder Blanket , 1991 .
[11] F. Najmabadi,et al. ARIES-I SiC Composite Low Activation Blanket Design , 1991 .
[12] C. Johnson,et al. Enhanced tritium transport and release by solids modification , 1991 .
[13] D. L. Baldwin,et al. The FUBR-1B irradiation experiment — Tritium release and physical stability of solid breeder materials☆ , 1991 .
[14] I. J. Hastings,et al. Bubble formation in irradiated Li2O , 1991 .
[15] C. Johnson,et al. The Sibelius experiment: Study of the irradiation behaviour of beryllium/ceramic and beryllium/steel compacts , 1991 .
[16] D. L. Baldwin,et al. Tritium release from irradiated beryllium at elevated temperatures , 1991 .
[17] M. Abdou,et al. Mistral: A comprehensive model for tritium transport in lithium-base ceramics: Part II: Comparison of model predictions with experimental results , 1990 .
[18] M. Abdou,et al. Mistral: A comprehensive model for tritium transport in lithium-base ceramics , 1990 .
[19] M. Abdou,et al. Thermal, Fluid Flow, and Tritium Release Problems in Fusion Blankets , 1990 .
[20] J. Kopasz,et al. Modeling unusual tritium release behavior from Li/sub 2/O , 1989 .
[21] A. K. Fischer,et al. Measurements of Adsorption in the LiAlO 2 -H 2 O(g) System , 1989 .
[22] J. Quanci. Tritium breeding and release-rate kinetics from neutron-irradiated lithium oxide , 1989 .
[23] W. Breitung,et al. Out-of-pile tritium extraction from lithium silicate , 1988 .
[24] L. Debarberis,et al. Tritium release from the various solid breeder materials irradiated in exotic experiments 1, 2 and 3 , 1988 .
[25] C. Johnson,et al. CRITIC-I irradiation of Li2O☆ , 1988 .
[26] C. Johnson,et al. Ceramic breeder materials , 1988 .
[27] W. Breitung,et al. The LISA-2 experiment: In-situ tritium release from lithium orthosilicate (Li4SiO4) , 1988 .
[28] K. Okuno,et al. Tritium release behavior of ceramic breeder candidates for fusion reactors , 1988 .
[29] E. Roth,et al. In-pile tritium extraction from samples of lithium aluminate , 1988 .
[30] D. Vollath,et al. In-pile tritium release behavior from lithium aluminate and lithium orthosilicate of the VOM-23 experiment , 1988 .
[31] H. Elbel. Open pore structure analysis of lithium bearing ceramics , 1988 .
[32] C. Johnson,et al. Modeling of tritium behavior in ceramic breeder materials , 1988 .
[33] P. Bertone. The kinetics that govern the release of tritium from neutron-irradiated lithium oxide , 1988 .
[34] S. Nagai. Surface structural change of alumina induced by electron impact in CO2, CO, O2 and D2O , 1988 .
[35] P. Gierszewski,et al. Testing needs and experiments for solid breeder blankets , 1986 .
[36] D. L. Baldwin,et al. Measurements of tritium and helium in fast neutron irradiated lithium ceramics using high temperature vacuum extraction , 1986 .
[37] Mohamed A. Abdou,et al. Fission reactor experiments for solid breeder blankets , 1986 .
[38] H. Werle,et al. The LISA1 experiment: In-situ tritium release investigations , 1986 .
[39] R. B. Poeppel,et al. The FUBR-1B experiment - irradiation of lithium ceramics to high burnups under large temperature gradients , 1986 .
[40] C. Johnson,et al. Studies of surface adsorption on LiAlO2 , 1986 .
[41] J. Miller,et al. Post-irradiation tritium recovery from lithium ceramic breeder materials , 1986 .
[42] M. Billone. The influence of surface desorption on tritium recovery and inventory in fusion solid breeders , 1986 .
[43] H. Kudo,et al. Chemical states of tritium and interaction with radiation damages in Li2O crystals , 1986 .
[44] V. Vasilyev. Thermodynamic and Kinetic Research of Li2O - H2O System , 1985 .
[45] Hitoshi Watanabe,et al. Correlation behavior of lithium and tritium in some solid breeder materials , 1985 .
[46] C. Johnson,et al. Thermodynamics of Li2O and other breeders for fusion reactors , 1985 .
[47] M. Billone,et al. Tritium Percolation, Convection, and Permeation in Fusion Solid-Breeder Blankets , 1985 .
[48] M. Billone,et al. Modeling of tritium transport in lithium aluminate fusion solid breeders , 1985 .
[49] C. Wu,et al. Chemical thermodynamics of fusion reactor breeding materials and their interaction with tritium , 1985 .
[50] C. Johnson,et al. Thermodynamics of the Li2O fusion reactor breeder , 1984 .
[51] C. Johnson,et al. Partial pressures of H2O above the diphasic Li2O(s)−LiOH(s,l) system , 1984 .
[52] C. Wu,et al. The solubility of deuterium in solid Li2O , 1984 .
[53] John H. Norman,et al. Measurements of the activity coefficient of LiOH dissolved in Li20(s) for an evaluation of Li2O as a tritium breeder material , 1984 .
[54] C. Johnson,et al. Recent advances in the development of solid breeder blanket materials , 1984 .
[55] L. C. Bate,et al. The TRI0-01 experiment: In-situ tritium recovery results , 1984 .
[56] D. L. Baldwin. Measurement of retained helium and tritium in irradiated lithium ceramics , 1984 .
[57] H. Yoshida,et al. In situ tritium recovery experiment from lithium oxide under high neutron fluence , 1984 .
[58] D. Guggi,et al. Diffusion of tritium in single crystal Li2O , 1983 .
[59] D. J. Suiter. Lithium-based oxide ceramics for tritium-breeding applications , 1983 .
[60] Michael Minkoff,et al. DISPL: a software package for one and two spatially dimensioned kinetics-diffusion problems. [FORTRAN for IBM computers] , 1978 .
[61] Donald R. Olander,et al. Fundamental Aspects of Nuclear Reactor Fuel Elements , 1976 .
[62] T. Morimoto,et al. The Adsorption of Water on SiO2, Al2O3, and SiO2·Al2O3. The Relation between the Amounts of Physisorbed and Chemisorbed Water , 1971 .
[63] S. J. Gregg,et al. Adsorption Surface Area and Porosity , 1967 .
[64] S. Roy,et al. Solubility of Hydrogen in Porous Polycrystalline Aluminum Oxide , 1967 .
[65] A. Michaels. Diffusion in a pore of irregular cross section—a simplified treatment , 1959 .
[66] J. C. Jaeger,et al. Conduction of Heat in Solids , 1952 .
[67] D. Smith. ITER blanket, shield and material data base , 1991 .
[68] T. Terai,et al. IN-situ tritium release experiments from solid breeding materials (TTTEx) — tritium diffusion coefficients and surface reaction on lithium aluminate , 1989 .
[69] H. Kudo,et al. Tritium diffusivity in lithium-based ceramic breeders irradiated with neutrons , 1989 .
[70] Hitoshi Watanabe,et al. Current experimental activities for solid breeder development , 1989 .
[71] A. R. Raffray,et al. Modeling, analysis and experiments for fusion nuclear technology , 1988 .
[72] Y. Nagame,et al. Chemical states of tritium in solid lithium compounds irradiated with neutrons , 1985 .
[73] H. Amano,et al. Chemical behaviors of tritium produced by the 6Li(n, α)T reaction in lithium oxide , 1978 .
[74] R. Causey,et al. Abstract: Tritium diffusion in ceramic materials for thermonuclear reactors , 1976 .