Leaching Processes and Evaluation Tests for Inorganic Constituent Release from Cement-Based Matrices
暂无分享,去创建一个
[1] Surendra P. Shah,et al. Permeability study of cracked concrete , 1997 .
[2] William John McCarter,et al. Electrical conductivity, diffusion, and permeability of Portland cement-based mortars , 2000 .
[3] Herbert E. Allen,et al. Remediation of metal contaminated soil by EDTA incorporating electrochemical recovery of metal and EDTA , 1993 .
[4] A. C. Garrabrants,et al. Environmental assessment of waste matrices contaminated with arsenic. , 2003, Journal of Hazardous Materials.
[5] Jan Olek,et al. Sulfate attack research — whither now? , 2001 .
[6] T. Takebe,et al. Decomposition of synthesized ettringite by carbonation , 1992 .
[7] F. P. Glasser,et al. Fundamental aspects of cement solidification and stabilisation , 1997 .
[8] Günther Meschke,et al. Environmentally induced deterioration of concrete: physical motivation and numerical modeling , 2003 .
[9] L. Lange,et al. The effect of accelerated carbonation on the properties of cement-solidified waste forms , 1996 .
[10] Theodore W. Bremner,et al. Magnetic Resonance Imaging and Moisture Content Profiles of Drying Concrete , 1998 .
[11] H. D. Sloot. Characterization of the leaching behaviour of concrete mortars and of cement-stabilized wastes with different waste loading for long term environmental assessment. , 2002 .
[12] B. Mather,et al. Sulfate attack, or is it? , 1999 .
[13] Sunil Kumar,et al. Sulfate attack on concrete in simulated cast-in-situ and precast situations , 1995 .
[14] A. C. Garrabrants,et al. Leaching model for a cement mortar exposed to intermittent wetting and drying , 2003 .
[15] Raoul François,et al. Effect of the leaching of calcium hydroxide from cement paste on mechanical and physical properties , 1997 .
[16] Jay G. Sanjayan,et al. Resistance of alkali-activated slag concrete to carbonation , 2001 .
[17] Z. P. Bažant,et al. Nonlinear water diffusion in nonsaturated concrete , 1972 .
[18] Florence Sanchez,et al. Etude de la lixiviation de milieux poreux contenant des espèces solubles : application au cas des déchets solidifiés par liants hydrauliques , 1996 .
[19] B. Scheetz,et al. Ettringite and CSH Portland cement phases for waste ion immobilization: A review , 1996 .
[20] Jack M. Chi,et al. Effects of Carbonation on Mechanical Properties and Durability of Concrete Using Accelerated Testing Method , 2002 .
[21] Omar Saeed Baghabra Al-Amoudi,et al. Attack on plain and blended cements exposed to aggressive sulfate environments , 2002 .
[22] B. Wehrli,et al. DISSOLUTION-PRECIPITATION BEHAVIOUR OF ETTRINGITE, MONOSULFATE, AND CALCIUM SILICATE HYDRATE , 2004 .
[23] Masaaki Kaneko,et al. Contribution to Understanding Iodine Sorption Mechanism onto Mixed Solid Alumina Cement and Calcium Compounds , 2002 .
[24] David S. Kosson,et al. Modeling Moisture Transport from a Portland Cement-Based Material During Storage in Reactive and Inert Atmospheres , 2003 .
[25] A. Tessier,et al. Sequential extraction procedure for the speciation of particulate trace metals , 1979 .
[26] K. Lewin. Leaching tests for waste compliance and characterisation: recent practical experiences , 1996 .
[27] John Forbes Olesen,et al. Influence of Cement Particle‐Size Distribution on Early Age Autogenous Strains and Stresses in Cement‐Based Materials , 2001 .
[28] D. Cocke,et al. An infrared spectroscopic examination of cement‐based solidification/stabilization systems ‐ Portland types V and IP with zinc , 1992 .
[29] H. Akita,et al. A practical procedure for the analysis ofmoisture transfer within concrete due to drying , 1997 .
[30] Raoul François,et al. MODELLING THE LOSS OF STRENGTH AND POROSITY INCREASE DUE TO THE LEACHING OF CEMENT PASTES , 1999 .
[31] P. Brown,et al. Chemical changes in concrete due to the ingress of aggressive species , 2000 .
[32] Detlef Kuhl,et al. Coupled chemo-mechanical deterioration of cementitious materials. Part I: Modeling , 2004 .
[33] G. Angelis,et al. Leach Studies: Influence of Various Parameters on the Leachability of Cesium from Cemented BWR Evaporator Concentrates , 1992 .
[34] Jesse R. Conner,et al. The History of Stabilization/Solidification Technology , 1998 .
[35] C. Page,et al. Effects of carbonation on pore structure and diffusional properties of hydrated cement pastes , 1997 .
[36] Michael N. Fardis,et al. Experimental investigation and mathematical modeling of the concrete carbonation problem , 1991 .
[37] J. Parga,et al. Binding chemistry and leaching mechanisms in solidified hazardous wastes , 1991 .
[38] D. J. Hassett,et al. Oxyanion Substituted Ettringites: Synthesis and Characterization; and their Potential Role In Immobilization of As, B, Cr, Se and V , 1989 .
[39] Jay G. Sanjayan,et al. Sulfate attack on alkali-activated slag concrete , 2002 .
[40] Bruno Gérard,et al. Modelling the leaching kinetics of cement-based materials––influence of materials and environment , 2003 .
[41] Peter J. Tumidajski,et al. On the Validity of the Katz-Thompson Equation for Permeabilities in Concrete , 1998 .
[42] K. Cheng,et al. Morphology and pH Changes in Leached Solidified/Stabilized Waste Forms , 1996 .
[43] H. Jennings,et al. Comparison of measured and calculated permeabilities for hardened cement pastes , 1996 .
[44] B. Gérard,et al. Influence of cracking on the diffusion properties of cement-based materials : Part I : Influence of continuous cracks on the steady-state regime , 2000 .
[45] Thompson,et al. Quantitative prediction of permeability in porous rock. , 1986, Physical review. B, Condensed matter.
[46] P. Brown,et al. Thaumasite formation and other forms of sulfate attack , 2002 .
[47] Bill Batchelor,et al. Mineralogical alterations that affect the durability and metals containment of aged solidified and stabilized wastes , 1999 .
[48] Michael N. Fardis,et al. A reaction engineering approach to the problem of concrete carbonation , 1989 .
[49] J. Sharp,et al. The microstructure and mechanical properties of blended cements hydrated at various temperatures , 2001 .
[50] Raoul François,et al. Aging damage model of concrete behavior during the leaching process , 1997 .
[51] F. Glasser,et al. Investigation of the CaO-Al2O3-SiO2-H2O system at 25°C by thermodynamic calculations , 1995 .
[52] Kimberly E. Kurtis,et al. X-ray microtomography (microCT) of the progression of sulfate attack of cement paste , 2002 .
[53] Franz-Josef Ulm,et al. POROPLASTIC PROPERTIES OF CALCIUM-LEACHED CEMENT-BASED MATERIALS , 2003 .
[54] J. van Leeuwen,et al. Mine tailings - practical experiences in filling up harbours , 1997 .
[55] C. Vandecasteele,et al. Influence of carbonation and carbonation methods on leaching of metals from mortars , 2004 .
[56] Olivier Coussy,et al. Propagation Fronts during Calcium Leaching and Chloride Penetration , 2000 .
[57] Kazusuke Kobayashi,et al. Carbonation of concrete structures and decomposition of CSH , 1994 .
[58] T. Taylor Eighmy,et al. An approach for estimation of contaminant release during utilization and disposal of municipal waste combustion residues , 1996 .
[59] Wps Dias,et al. Reduction of concrete sorptivity with age through carbonation , 2000 .
[60] R. N. Nair,et al. Desorption Kinetics of Radionuclides Fixed in Cement Matrix , 1993 .
[61] John C. Walton,et al. Fluid flow through fractures in below ground concrete vaults , 1992 .
[62] Bing Tian,et al. Does gypsum formation during sulfate attack on concrete lead to expansion , 2000 .
[63] J. Olek,et al. MECHANISM OF SULFATE ATTACK: A FRESH LOOK. PART 2: PROPOSED MECHANISMS , 2003 .
[64] M. Bellotto,et al. A dynamic leaching method for the assessment of trace metals released from hydraulic binders. , 2002, Waste management.
[65] Salman Azhar,et al. Comparison of the strength and durability performance of normal- and high-strength pozzolanic concretes at elevated temperatures , 2001 .
[66] C. Atiş. ACCELERATED CARBONATION AND TESTING OF CONCRETE MADE WITH FLY ASH , 2003 .
[67] C. Polprasert,et al. Influence of condensed silica fume on the properties of cement-based solidified wastes , 2001 .
[68] Fredrik P. Glasser,et al. Long-term leaching mechanisms of Portland cement-stabilized municipal solid waste fly ash in carbonated water , 1999 .
[69] Vagelis G. Papadakis,et al. Experimental investigation and theoretical modeling of silica fume activity in concrete , 1999 .
[70] N. Buenfeld,et al. Prediction of leachate pH for cement paste containing pure metal compounds. , 2002, Journal of hazardous materials.
[71] R. Cioffi,et al. Matrix stability and leaching behaviour in ettringite-based stabilization systems doped with heavy metals , 1998 .
[72] M. Bradbury,et al. Diffusion and adsorption studies on hardened cement paste and the effect of carbonation on diffusion rates , 1992 .
[73] Alan B. Poole,et al. Effect of carbonation on properties of blended and non-blended cement solidified waste forms , 1997 .
[74] D. Northwood,et al. Durability of concrete—accelerated carbonation and weathering studies , 1999 .
[75] Theodore W. Bremner,et al. Moisture transport in initially fully saturated concrete during drying , 1996 .
[76] L. Lange,et al. Preliminary Investigation into the Effects of Carbonation on Cement-Solidified Hazardous Wastes , 1996 .
[77] Raoul François,et al. Leaching of both calcium hydroxide and C-S-H from cement paste: Modeling the mechanical behavior , 1996 .
[78] A. C. Garrabrants,et al. Use of a chelating agent to determine the metal availability for leaching from soils and wastes , 2000 .
[79] Sidney Diamond,et al. Expression and analysis of pore fluids from hardened cement pastes and mortars , 1981 .
[80] Marc-André Bérubé,et al. Alkali mass balance during the accelerated concrete prism test for alkali–aggregate reactivity , 2003 .
[81] Detlef Kuhl,et al. Coupled chemo-mechanical deterioration of cementitious materials Part II: Numerical methods and simulations , 2004 .
[82] Karen Scrivener,et al. Delayed ettringite formation , 2001 .
[83] C. T. Tam,et al. EFFECT OF WATER-TO-CEMENTITIOUS MATERIALS RATIO AND SILICA FUME ON THE AUTOGENOUS SHRINKAGE OF CONCRETE , 2003 .
[84] H. A. van der Sloot,et al. Developments in evaluating environmental impact from utilization of bulk inert wastes using laboratory leaching tests and field verification , 1996 .
[85] F. Ulm,et al. Similarity properties of demineralization and degradation of cracked porous materials , 2001 .
[86] S. Sarkar,et al. The effects of simulated environmental attack on immobilization of heavy metals doped in cement-based materials , 1995 .
[87] J. G. Cabrera,et al. Effects of initial curing condition on the fluid transport properties in OPC and fly ash blended cement concrete , 2004 .
[88] Julia A. Stegemann,et al. Response of Various Solidification Systems to Acid Addition , 1997 .
[89] P. Bishop,et al. Prediction of metal leaching rates from solidified/stabilized wastes using the shrinking unreacted core leaching procedure , 1997 .
[90] A. C. Garrabrants,et al. The effects of carbonation and drying during intermittent leaching on the release of inorganic constituents from a cement-based matrix , 2004 .
[91] E. Reardon,et al. Permeability and porosity changes associated with cement grout carbonation , 1991 .
[92] Marc-André Bérubé,et al. Evaluation of the validity of the pore solution expression method from hardened cement pastes and mortars , 1994 .
[93] M. Kaviany,et al. Funicular and evaporative-front regimes in convective drying of granular beds , 1992 .
[94] Ting-Chien Chen,et al. Selection and test of effective chelators for removal of heavy metals from contaminated soils , 1995 .
[95] Paulo J.M. Monteiro,et al. Stress analysis of expansive reactions in concrete , 2000 .
[96] Takayuki Shimaoka,et al. Behavior of stabilized fly ashes in solid waste landfills , 1996 .
[97] I. Hohberg,et al. Development of a leaching protocol for concrete , 2000 .
[98] G. J. de Groot,et al. Determination of Leaching Characteristics of Waste Materials Leading to Environmental Product Certification , 1992 .
[99] David S. Kosson,et al. An Integrated Framework for Evaluating Leaching in Waste Management and Utilization of Secondary Materials , 2002 .
[100] Zdeněk P. Bažant,et al. Drying of concrete as a nonlinear diffusion problem , 1971 .
[101] Frank K. Cartledge,et al. State of the art on stabilization of hazardous organic liquid wastes and sludges , 1985 .
[102] D. Yonge,et al. Chemical characterization, leach and adsorption studies of solidified low-level wastes , 1988 .
[103] L. Butler,et al. Immobilization mechanisms in solidifiction/stabilization of cadmium and lead salts using portland cement fixing agents , 1990 .
[104] A. Atkinson,et al. Leach test characterisation of cement-based nuclear waste forms , 1986 .
[105] F. P. Glasser,et al. Modelling the impact of abundant geochemical components on phase stability and solubility of the CaO-SiO2-H2O system at 25°C : Na+, K+, SO42-, Cl- and CO32- , 1997 .
[106] A. S. El-Dieb,et al. Evaluation of the Katz-Thompson model for estimating the water permeability of cement-based materials from mercury intrusion porosimetry data , 1994 .
[107] H. Taylor,et al. Microstructural and microanalytical studies of sulfate attack. IV. Reactions of a slag cement paste with sodium and magnesium sulfate solutions , 1996 .
[108] F. P. Glasser,et al. Impact of carbon dioxide on the immobilization potential of cemented wastes: Chromium , 1997 .
[109] L. Tiruta-Barna,et al. Modeling of solid/liquid/gas mass transfer for environmental evaluation of cement-based solidified waste. , 2001, Environmental science & technology.
[110] Olivier Coussy,et al. Characterization and identification of equilibrium and transfer moisture properties for ordinary and high-performance cementitious materials , 1999 .
[111] D. Cocke,et al. The binding chemistry and leaching mechanisms of hazardous substances in cementitious solidification/stabilization systems , 1990 .
[112] Tatsuya Numao,et al. Moisture migration and drying properties of hardened cement paste and mortar , 1995 .
[113] T. Lin,et al. Leaching processes of the dicalcium silicate and copper oxide solidification/stabilization system , 1994 .
[114] Christian Ludwig,et al. Hydrological and geochemical factors controlling the leaching of cemented MSWI air pollution control residues : A lysimeter field study , 2000 .
[115] C. Cheeseman,et al. Characterisation of environmentally exposed cement-based stabilised/solidified industrial waste. , 2003, Journal of hazardous materials.
[116] P. Bishop,et al. Metals Distribution in Solidified/Stabilized Waste Forms after Leaching , 1992 .
[117] L. J. Sluys,et al. Simulation of fracture of cementitious composites with explicit modeling of microstructural features , 2001 .
[118] A. C. Garrabrants,et al. Effects of Intermittent Wetting on Concentration Profiles and Release from a Cement-Based Waste Matrix , 2003 .
[119] A. C. Garrabrants,et al. Changes in constituent equilibrium leaching and pore water characteristics of a Portland cement mortar as a result of carbonation. , 2004, Waste management.
[121] V. Papadakis. Effect of fly ash on Portland cement systems. Part II. High-calcium fly ash , 1999 .
[122] J. Pera,et al. Interactions between lead and different binders , 1999 .
[123] A. Almusallam,et al. Effect of environmental conditions on the properties of fresh and hardened concrete , 2001 .
[124] L. Lange,et al. The influence of mix parameters and binder choice on the carbonation of cement solidified wastes , 1996 .
[125] C. Poon,et al. The effect of flow-through leaching on the diffusivity of heavy metals in stabilized/solidified wastes. , 2001, Journal of hazardous materials.
[126] R. Barna,et al. Leaching of inorganic contaminants from cement-based waste materials as a result of carbonation during intermittent wetting. , 2002, Waste management.
[127] V. Papadakis. Effect of supplementary cementing materials on concrete resistance against carbonation and chloride ingress , 2000 .
[128] D. Cocke,et al. The interfacial chemistry of solidification/stabilization of metals in cement and pozzolanic material systems , 1995 .
[129] Chen,et al. Comparison of the characteristics of flow-through and flow-around leaching tests of Solidified heavy metal wastes , 1999, Chemosphere.
[130] A. C. Garrabrants,et al. Environmental assessment of a cement-based solidified soil contaminated with lead , 2000 .
[131] D. Guyonnet,et al. Chemical changes and leachate mass balance of municipal solid waste bottom ash submitted to weathering. , 2002, Waste management.
[132] A. C. Garrabrants,et al. The effect of storage in an inert atmosphere on the release of inorganic constituents during intermittent wetting of a cement-based material. , 2002, Journal of hazardous materials.
[133] I. Richardson. The nature of C-S-H in hardened cements , 1999 .
[134] H. D. Sloot. Comparison of the characteristic leaching behavior of cements using standard (EN 196-1) cement mortar and an assessment of their long-term environmental behavior in construction products during service life and recycling , 2000 .
[135] Vladimír Živica,et al. Relationship between pore structure and permeability of hardened cement mortars: On the choice of effective pore structure parameter , 1997 .
[136] Won-Jin Cho,et al. Influence of temperature elevation on the sealing performance of a potential buffer material for a high-level radioactive waste repository , 2000 .
[137] P. Basheer,et al. Predictive models for deterioration of concrete structures , 1996 .
[138] G. Rauret,et al. Overview of the use of leaching/extraction tests for risk assessment of trace metals in contaminated soils and sediments , 2003 .
[139] F. P. Glasser,et al. The effect of test conditions on the leaching of stabilised MSWI-fly ash in Portland cement , 1998 .
[140] S. Badger,et al. The distributions of bound sulfates and chlorides in concrete subjected to mixed NaCl, MgSO4, Na2SO4 attack , 2000 .
[141] Robert Černý,et al. The effects of thermal load and frost cycles on the water transport in two high-performance concretes , 2001 .
[142] Jean-Paul Balayssac,et al. Effects of curing upon carbonation of concrete , 1995 .
[143] H. A. van der Sloot,et al. Waste materials in construction : putting theory into practice : proceedings of the International Conference on the Environmental and Technical Implications of Construction with Alternative Materials, WASCON `97, Houthem St. Gerlach, the Netherlands, 4-6 June 1997 , 1997 .
[144] Michael D.A. Thomas,et al. The use of bulk diffusion tests to establish time-dependent concrete chloride diffusion coefficients , 2003 .
[145] H. Taylor,et al. Microstructural and microanalytical studies of sulfate attack. V. Comparison of different slag blends , 1996 .
[146] Dimitris Dermatas,et al. UTILIZATION OF FLY ASH FOR STABILIZATION/SOLIDIFICATION OF HEAVY METAL CONTAMINATED SOILS , 2003 .
[147] I. Odler,et al. Investigations on stress corrosion of hardened cement pastes , 2000 .
[148] Nick R. Buenfeld,et al. Differential acid neutralisation analysis , 1999 .
[149] G. Glass,et al. Corrosion inhibition in concrete arising from its acid neutralisation capacity , 2000 .
[150] Jan Olek,et al. Mechanism of sulfate attack: A fresh look: Part 1: Summary of experimental results , 2002 .
[151] M. Kawamura,et al. Beneficial effect of fly ash on chloride diffusivity of hardened cement paste , 1999 .
[152] R. Smith,et al. Influence of carbonation on leaching of cementitious wasteforms , 1998 .
[153] P. Brown,et al. The stability of ettringite , 1993 .