Disposal Systems Evaluations and Tool Development - Engineered Barrier System (EBS) Evaluation.
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Jonny Rutqvist | James A. Blink | Carl I. Steefel | Thomas A. Buscheck | Mark Sutton | W G Halsey | Chin-Fu Tsang | Jens T. Birkholzer | Carlos F. Jove-Colon | Florie Caporuscio | Eric L. Sonnenthal | Hongwu Xu | Hui-Hai Liu | Thomas J. Wolery | M. A. Serrano de Caro | Schön S. Levy | C. Steefel | C. Tsang | E. Sonnenthal | M. Sutton | J. Rutqvist | J. Birkholzer | Hui-Hai Liu | C. Jové-Colón | T. Buscheck | F. Caporuscio | W. Halsey | T. Wolery | M. Caro | J. Blink | S. Levy | Hongwu Xu
[1] Arnault Lassin,et al. Chemical model for cement-based materials: Thermodynamic data assessment for phases other than C–S–H , 2010 .
[2] R. B. Peppler,et al. The system of lime, alumina, and water from 50-degrees to 250-degrees C , 1954 .
[3] Christian Ekberg,et al. A thermodynamic model for the calcium silicate hydrate gel, modelled as a non-ideal binary solid solution , 1997 .
[4] F. P. Glasser,et al. The chemistry of blended cements and backfills intended for use in radioactive waste disposal , 1999 .
[5] A. Revil,et al. Diffusion of ionic species in bentonite. , 2006, Journal of colloid and interface science.
[6] Saad Ali Khan,et al. Sorption of the long-lived radionuclides cesium-134, strontium-85 and cobalt-60 on bentonite , 2003 .
[7] Elaine Anderson,et al. INVESTIGATION OF COLLOIDAL HYDRATED CALCIUM SILICATES. I. SOLUBILITY PRODUCTS , 1960 .
[8] Velimir Pravdić,et al. Electrokinetics of Pure Clay Minerals Revisited , 1996 .
[9] D. Damidot,et al. Thermodynamic investigation of the CaO-Al[sub 2]O[sub 3]-CaCO[sub 3]-H[sub 2]O closed system at 25 C and the influence of Na[sub 2]O , 1994 .
[10] Roland Pusch,et al. Stiffening of smectite buffer clay by hydrothermal effects , 2010 .
[11] B. Lothenbach,et al. Supplementary cementitious materials , 2011 .
[12] E. Reardon,et al. An ion interaction model for the determination of chemical equilibria in cement/water systems , 1990 .
[13] H. Helgeson,et al. Summary and critique of the thermodynamic properties of rock forming minerals , 1978 .
[14] Paul Wersin,et al. Performance of the bentonite barrier at temperatures beyond 100 °C: A critical review , 2007 .
[15] E. Mouche,et al. Measurements of the thermal conductivity of clay-sand and clay-graphite mixtures used as engineered barriers for high-level radioactive waste disposal , 1992 .
[16] Carol J. Bruton,et al. Thermodynamic and structural characteristics of cement minerals at elevated temperature , 1994 .
[17] Arnault Lassin,et al. Chemical model for cement-based materials: Temperature dependence of thermodynamic functions for nanocrystalline and crystalline C–S–H phases , 2010 .
[18] Joe Carter,et al. FUEL CYCLE POTENTIAL WASTE FOR DISPOSITION , 2010 .
[19] V. I. Babushkin,et al. Thermodynamics of silicates , 1984 .
[20] Y. Tardy,et al. A method of estimating the Gibbs energies of formation of layer silicates , 1974 .
[21] Randall T. Cygan,et al. Molecular Models of Hydroxide, Oxyhydroxide, and Clay Phases and the Development of a General Force Field , 2004 .
[22] P. F. Low,et al. Changes in the Properties of a Montmorillonite-Water System during the Adsorption and Desorption of Water: Hysteresis , 1990 .
[23] F. Madsen,et al. Clay mineralogical investigations related to nuclear waste disposal , 1998, Clay Minerals.
[24] F. B. Neall. Modelling the Long-Term Chemical Evolution of Cement-Groundwater Systems , 1995 .
[25] J. Cuadros,et al. Interlayer cation effects on the hydration state of smectite , 1997 .
[26] Donald E. Macphee,et al. Compositional Model for Calcium Silicate Hydrate (C-S-H) Gels, Their Solubilities, and Free Energies of Formation , 1987 .
[27] T. J. Wolery,et al. Qualification of Thermodynamic Data for Geochemical Modeling of Mineral-Water Interactions in Dilute Systems , 2004 .
[28] R. Gens,et al. Overview of European concepts for high-level waste and spent fuel disposal with special reference waste container corrosion , 2008 .
[29] Antonio Gens,et al. In situ behaviour of a stiff layered clay subject to thermal loading : observations and interpretation , 2007 .
[30] Luc R. Van Loon,et al. Anion exclusion effects in compacted bentonites: Towards a better understanding of anion diffusion , 2007 .
[31] Garrison Sposito,et al. Modeling diffusion and adsorption in compacted bentonite: a critical review. , 2003, Journal of contaminant hydrology.
[32] Horst-Jürgen Herbert,et al. Long-Term Leaching Experiments of Full-Scale Cemented Waste Forms: Experiments and Modeling , 2000 .
[33] A. G. Corkum,et al. Modelling a mine-by test at the Mont Terri rock laboratory, Switzerland , 2007 .
[34] Yu Wang,et al. Molecular simulations of the pressure, temperature, and chemical potential dependencies of clay swelling. , 2006, The journal of physical chemistry. B.
[35] H Wanner,et al. An integrated sorption-diffusion model for the calculation of consistent distribution and diffusion coefficients in compacted bentonite. , 2001, Journal of contaminant hydrology.
[36] B. Lothenbach,et al. Thermodynamic Modelling of the Effect of Temperature on the Hydration and Porosity of Portland Cement , 2008 .
[37] Toy S. Poole,et al. Individual and Combined Effects of Chloride, Sulfate, and Magnesium Ions on Hydrated Portland-Cement Paste , 1994 .
[38] Shaoping Chu,et al. Monte Carlo simulations for generic granite repository studies , 2010 .
[39] Barbara Lothenbach,et al. Impact of chloride on the mineralogy of hydrated portland cement systems , 2010 .
[40] W. M. Nutt. Used fuel disposition campaign international activities implementation plan. , 2011 .
[41] Carlos F. Jove-Colon,et al. Implementation of equilibrium aqueous speciation and solubility (EQ3 type) calculations into Cantera for electrolyte solutions. , 2009 .
[42] Carl D. Palmer,et al. Solubility of ettringite (Ca6[Al(OH)6]2(SO4)3 · 26H2O) at 5–75°C , 1999 .
[43] Steve Plimpton,et al. Fast parallel algorithms for short-range molecular dynamics , 1993 .
[44] A. Revil,et al. A triple-layer model of the surface electrochemical properties of clay minerals. , 2004, Journal of colloid and interface science.
[45] M. J. Apted,et al. A Modest Proposal: A Robust, Cost-Effective Design for High-Level Waste Packages , 1997 .
[46] T. N. Chang,et al. Investigation of the Colloidal Hydrated Calcium Silicates. II. Solubility Relationships in the Calcium Oxide-Silica-Water System at 25° , 1965 .
[47] Denis Damidot,et al. Thermodynamic modelling: state of knowledge and challenges , 2010 .
[48] Garrison Sposito,et al. Modeling cation diffusion in compacted water-saturated sodium bentonite at low ionic strength. , 2007, Environmental science & technology.
[49] Van Genuchten,et al. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils , 1980 .
[50] Hiroyuki Umeki,et al. The Role of the Engineered Barrier System in Safety Cases for Geological Radioactive Waste Repositories: An NEA Initiative in Co-operation with the EC , 2006 .
[51] Johan Jozef Paul Bel,et al. Temperature Criterion Related to Clay Based Backfill Materials in the Framework of a Geological Repository of Heat Producing Radioactive Waste (HLW) , 2001 .
[52] R. E. Westerman. Preliminary conceptual designs for advanced packages for the geologic disposal of spent fuel , 1979 .
[53] C.A.J. Appelo,et al. Modelling bentonite–water interactions at high solid/liquid ratios: swelling and diffuse double layer effects , 2004 .
[54] Tae-Won Suk,et al. Diffusivities for ions through compacted Na-bentonite with varying dry bulk density , 1993 .
[55] A Revil,et al. Introducing interacting diffuse layers in TLM calculations: a reappraisal of the influence of the pore size on the swelling pressure and the osmotic efficiency of compacted bentonites. , 2007, Journal of colloid and interface science.
[56] James A. Blink,et al. The Disposal Systems Evaluation Framework for DOE-NE , 2010 .
[57] Barbara Lothenbach,et al. Thermodynamic properties of Portland cement hydrates in the system CaO–Al2O3–SiO2–CaSO4–CaCO3–H2O , 2007 .
[58] Philippe Blanc,et al. Modeling diffusion of an alkaline plume in a clay barrier , 2004 .
[59] Veraun Chipman,et al. Yucca Mountain Project Preclosure Ventilation Heat Transfer Analysis: Solution Method and Results , 2004 .
[60] J. C. Jaeger,et al. Conduction of Heat in Solids , 1952 .
[61] Antonio Gens,et al. Modelling the mechanical behaviour of expansive clays , 1999 .
[62] Elena V. Zakharova,et al. Neptunium, plutonium and 137Cs sorption by bentonite clays and their speciation in pore waters , 2006 .
[63] Volker Metz,et al. Geochemically derived non-gaseous radionuclide source term for the Asse salt mine – assessment for the use of a Mg(OH)2-based backfill material , 2004 .
[64] U. R. Berner,et al. Evolution of pore water chemistry during degradation of cement in a radioactive waste repository environment , 1992 .
[65] Donald E. Macphee,et al. Solubility and Aging of Calcium Silicate Hydrates in Alkaline Solutions at 25°C , 1989 .
[66] Ruben Kretzschmar,et al. Solubility of Fe–ettringite (Ca6[Fe(OH)6]2(SO4)3 · 26H2O) , 2008 .
[67] A. Muurinen,et al. Diffusion of anions and cations in compacted sodium bentonite , 1994 .
[68] Hamlin M. Jennings,et al. Thermodynamics of Calcium Silicate Hydrates and Their Solutions , 1987 .
[69] Urs R. Berner. Modelling Porewater Chemistry in Hydrated Portland Cement , 1986 .
[70] Sandia Report. Disposal Systems Evaluations and Tool Development Engineered Barrier System (EBS) Evaluation , 2011 .
[71] Hamlin M. Jennings,et al. Free‐Energy‐Based Model of Chemical Equilibria in the CaO–SiO2‐H2O System , 2005 .
[72] Michael Jobmann,et al. Influence of graphite and quartz addition on the thermo–physical properties of bentonite for sealing heat-generating radioactive waste , 2009 .
[73] Daisuke Sugiyama,et al. A thermodynamic model of dissolution and precipitation of calcium silicate hydrates , 2006 .
[74] Della M. Roy,et al. Longevity of borehole and shaft sealing materials: thermodynamic properties of cements and related phases applied to repository sealing , 1982 .
[75] N. Møller,et al. The prediction of mineral solubilities in natural waters: The Na-K-Mg-Ca-H-Cl-SO4-OH-HCO3-CO3-CO2-H2O system to high ionic strengths at 25°C , 1984 .
[76] K Lemmens,et al. The effect of clay on the dissolution of nuclear waste glass , 2001 .
[77] U. R. BERNER,et al. Modelling the Incongruent Dissolution of Hydrated Cement Minerals , 1988 .
[78] Mark Sutton,et al. FY10 Report on EBS Evaluations, Level 4 Milestone (M4): M4508042504 , 2010 .
[79] M. Kersten,et al. Aqueous solubility diagrams for cementitious waste stabilization systems. 1. The C-S-H solid-solution system , 1996 .
[80] B. Lothenbach,et al. Thermodynamic modelling of the hydration of Portland cement , 2006 .
[81] U. Berner,et al. A thermodynamic description of the evolution of pore water chemistry and uranium speciation during the degradation of cement , 1990 .
[82] Dmitrii A. Kulik,et al. Aqueous Solubility Diagrams for Cementitious Waste Stabilization Systems: II, End‐Member Stoichiometries of Ideal Calcium Silicate Hydrate Solid Solutions , 2001 .
[83] Peter C. Lichtner,et al. Incorporating solid solutions in reactive transport equations using a kinetic discrete-composition approach , 2006 .
[84] D. H. Lester,et al. Systems study on engineered barriers: barrier performance analysis , 1980 .
[85] H. Helgeson,et al. A chemical and thermodynamic model of aluminous dioctahedral 2:1 layer clay minerals in diagenetic processes; regular solution representation of interlayer dehydration in smectite , 1994 .
[86] Fredrik P. Glasser,et al. A thermodynamic model for blended cements. II: Cement hydrate phases; thermodynamic values and modelling studies , 1992 .
[87] Fredrik P. Glasser,et al. A thermodynamic model for blended cements , 1992 .
[88] Urs Mäder,et al. Cement-rock interaction: Infiltration of a high-pH solution into a fractured granite core , 2010 .
[89] Javier Samper,et al. Reactive transport model of interactions of corrosion products and bentonite , 2008 .
[90] W. Kondo,et al. ESTIMATION OF THERMOCHEMICAL DATA FOR CALCIUM SILICATE HYDRATE (C-S-H) , 1983 .
[91] H. Helgeson,et al. Estimation of the standard molal heat capacities, entropies and volumes of 2:1 clay minerals , 1994 .
[92] Randall T. Cygan,et al. Molecular Modeling in Mineralogy and Geochemistry , 2001 .
[93] J. Payer,et al. A Review of Materials and Corrosion Issues Regarding Canisters for Disposal of Spent Fuel and High-Level Waste in Opalinus Clay , 2011 .
[94] Jerry P. Greenberg,et al. The prediction of mineral solubilities in natural waters: A chemical equilibrium model for the Na-K-Ca-Cl-SO4-H2O system to high concentration from 0 to 250°C , 1989 .
[95] Ian G. McKinley,et al. Geochemical optimisation of a disposal system for high-level radioactive waste , 2006 .
[96] J. Oliver,et al. Characterization of a french clay barrier and outline of the experimental programme , 1990 .
[97] B. Kirby. Micro- and nanoscale fluid mechanics : transport in microfluidic devices , 2010 .