Leaching of monolithic and granular alkali activated slag-fly ash materials, as a function of the mixture design.
暂无分享,去创建一个
[1] Hans A van der Sloot,et al. Long-term leaching from recycled concrete aggregates applied as sub-base material in road construction. , 2017, The Science of the total environment.
[2] Nataša Marjanović,et al. Physical–mechanical and microstructural properties of alkali-activated fly ash–blast furnace slag blends , 2015 .
[3] Jerzy Jankowski,et al. Mobility of trace elements from selected Australian fly ashes and its potential impact on aquatic ecosystems , 2006 .
[4] 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 .
[5] Kai Yang,et al. Immobilization potential of Cr(VI) in sodium hydroxide activated slag pastes. , 2017, Journal of hazardous materials.
[6] W. P. Miller,et al. Arsenic and selenium speciation in coal fly ash extracts by ion chromatography-inductively coupled plasma mass spectrometry , 1998 .
[7] Marios Soutsos,et al. The Role of Water Content and Paste Proportion on Physico-mechanical Properties of Alkali Activated Fly Ash–Ggbs Concrete , 2016, Journal of Sustainable Metallurgy.
[8] Guang Ye,et al. Waste glass as partial mineral precursor in alkali-activated slag/fly ash system , 2017 .
[9] John L. Provis,et al. Influence of fly ash on the water and chloride permeability of alkali-activated slag mortars and concretes , 2013 .
[10] A. Radlińska,et al. Fly ash-slag interaction during alkaline activation: Influence of activators on phase assemblage and microstructure formation , 2016 .
[11] Haeng-Ki Lee,et al. Shrinkage characteristics of alkali-activated fly ash/slag paste and mortar at early ages , 2014 .
[12] F. Morel,et al. Surface Complexation Modeling: Hydrous Ferric Oxide , 1990 .
[13] Douglas G. Brookins,et al. Eh-PH diagrams for geochemistry , 1988 .
[14] K. Komnitsas,et al. Utilisation of low-calcium slags to improve the strength and durability of geopolymers , 2009 .
[15] D. French,et al. Investigation on chemical species of arsenic, selenium and antimony in fly ash from coal fuel thermal power stations. , 2005, Journal of environmental monitoring : JEM.
[16] J. Hower,et al. On the removal of hexavalent chromium from a Class F fly ash. , 2016, Waste management.
[17] Maria C.G. Juenger,et al. The role of activating solution concentration on alkali–silica reaction in alkali-activated fly ash concrete , 2016 .
[18] C. Vandecasteele,et al. Leaching mechanisms of oxyanionic metalloid and metal species in alkaline solid wastes: A review , 2008 .
[19] H. A. van der Sloot,et al. Field site leaching from recycled concrete aggregates applied as sub-base material in road construction. , 2012, The Science of the total environment.
[20] A. C. Garrabrants,et al. pH-dependent leaching of constituents of potential concern from concrete materials containing coal combustion fly ash. , 2014, Chemosphere.
[21] Caijun Shi,et al. Stabilization/solidification of hazardous and radioactive wastes with alkali-activated cements. , 2006, Journal of hazardous materials.
[22] Francisca Puertas,et al. Effect of activator mix on the hydration and strength behaviour of alkali-activated slag cements , 2003 .
[23] W. Brameshuber,et al. Binding and leaching of trace elements in Portland cement pastes , 2016 .
[24] G. Ye,et al. The pore structure and permeability of alkali activated fly ash , 2013 .
[25] John L. Provis,et al. The Role of Sulfide in the Immobilization of Cr(VI) in Fly Ash Geopolymers , 2008 .
[26] A. Fernández-Jiménez. Alkali activated materials , 2019 .
[27] Bhavana Sethi,et al. Fly Ash , 2019, Zero Waste.
[28] Hao Wang,et al. Analysing the relation between pore structure and permeability of alkali-activated concrete binders , 2015 .
[29] H. Brouwers,et al. High performance of treated and washed MSWI bottom ash granulates as natural aggregate replacement within earth-moist concrete. , 2016, Waste management.
[30] X. Querol,et al. Coal fly ash-slag-based geopolymers: microstructure and metal leaching. , 2009, Journal of hazardous materials.
[31] J. Provis,et al. Geopolymers for immobilization of Cr(6+), Cd(2+), and Pb(2+). , 2008, Journal of hazardous materials.
[32] W. Müllauer,et al. Leaching behaviour of major and trace elements from concrete: Effect of fly ash and GGBS , 2015 .
[33] Rafat Siddique,et al. Supplementary Cementing Materials , 2011 .
[34] Paramita Mondal,et al. Role of slag in microstructural development and hardening of fly ash-slag geopolymer , 2013 .
[35] F. Khalili,et al. Efficiency and mechanism of stabilization/solidification of Pb(II), Cd(II), Cu(II), Th(IV) and U(VI) in metakaolin based geopolymers , 2017 .
[36] H. D. Sloot,et al. Leaching Characterisation and Geochemical Modelling of Minor and Trace Elements Released From Recycled Concrete Aggregates , 2010 .
[37] C. Warren,et al. Submicroscopic model of fly ash particles , 1987 .
[38] J. Deventer,et al. Reaction mechanisms in the geopolymeric conversion of inorganic waste to useful products. , 2007, Journal of hazardous materials.
[39] R. Comans,et al. Technical and environmental performance of lower carbon footprint cement mortars containing biomass fly ash as a secondary cementitious material , 2018, Resources, Conservation and Recycling.
[40] H. Brouwers,et al. Reaction kinetics, gel character and strength of ambient temperature cured alkali activated slag–fly ash blends , 2015 .
[41] M. Fincan,et al. Immobilization mechanism of Pb in fly ash-based geopolymer , 2017 .
[42] Guang Ye,et al. Effect of natural carbonation on the pore structure and elastic modulus of the alkali-activated fly ash and slag pastes , 2018 .
[43] J. Deventer,et al. Modification of phase evolution in alkali-activated blast furnace slag by the incorporation of fly ash , 2014 .
[44] H. Lee,et al. A novel eco-friendly porous concrete fabricated with coal ash and geopolymeric binder: Heavy metal leaching characteristics and compressive strength , 2015 .
[45] Pradip Nath,et al. The effects of ground granulated blast-furnace slag blending with fly ash and activator content on the workability and strength properties of geopolymer concrete cured at ambient temperature , 2014 .
[46] I. Burke,et al. Alkaline residues and the environment: a review of impacts, management practices and opportunities , 2016 .
[47] X. Querol,et al. The role of open and closed curing conditions on the leaching properties of fly ash-slag-based geopolymers. , 2010, Journal of hazardous materials.
[48] H. D. Sloot,et al. Release of major elements from recycled concrete aggregates and geochemical modelling , 2009 .
[49] Hamlin M. Jennings,et al. Pore solution chemistry of alkali-activated ground granulated blast-furnace slag , 1999 .
[50] Ángel Palomo,et al. Alkali-activated cementitious materials: Alternative matrices for the immobilisation of hazardous wastes: Part II. Stabilisation of chromium and lead , 2003 .
[51] Xavier Querol,et al. Leaching behaviour of elements from coal combustion fly ash: An overview , 2012 .