Evaluation of the Effect of Silica Fume on Amorphous Fly Ash Geopolymers Exposed to Elevated Temperature
暂无分享,去创建一个
M. Nabiałek | M. Abdullah | B. Jeż | R. Bayuaji | Liew Yun-Ming | Heah Cheng-Yong | Foo Kai Loong | T. S. Jin | N. H. Teng | O. Li | Ng Yong Sing
[1] P. Chindaprasirt,et al. Changes in compressive strength, microstructure and magnetic properties of a high-calcium fly ash geopolymer subjected to high temperatures , 2020 .
[2] Shaswat Kumar Das,et al. Fresh, strength and microstructure properties of geopolymer concrete incorporating lime and silica fume as replacement of fly ash , 2020 .
[3] J. Spangenberg,et al. Hardening evolution of geopolymers from setting to equilibrium: A review , 2020, Cement and Concrete Composites.
[4] C. Shi,et al. Mechanical and fracture properties of ultra-high performance geopolymer concrete: Effects of steel fiber and silica fume , 2020 .
[5] Guneet Saini,et al. Assessing properties of alkali activated GGBS based self-compacting geopolymer concrete using nano-silica , 2020, Case Studies in Construction Materials.
[6] I. Rostovsky,et al. Optimization of geopolymers based on natural zeolite clinoptilolite by calcination and use of aluminate activators , 2020 .
[7] Jnyanendra Kumar Prusty,et al. Multi-response optimization using Taguchi-Grey relational analysis for composition of fly ash-ground granulated blast furnace slag based geopolymer concrete , 2020 .
[8] P. Chindaprasirt,et al. Comparative study of fire-resistant behaviors of high-calcium fly ash geopolymer mortar containing zeolite and mullite , 2020 .
[9] A. Akbarnezhad,et al. Recycled geopolymer aggregates as coarse aggregates for Portland cement concrete and geopolymer concrete: Effects on mechanical properties , 2020 .
[10] Jianyu Liang,et al. Preparation of a geopolymer from red mud slurry and class F fly ash and its behavior at elevated temperatures , 2019, Construction and Building Materials.
[11] O. B. Brik,et al. Kinetics of hematite to magnetite transformation by gaseous reduction at low concentration of carbon monoxide , 2019, Chemical Engineering Research and Design.
[12] B. Singh,et al. Effect of sodium carbonate/sodium silicate activator on the rheology, geopolymerization and strength of fly ash/slag geopolymer pastes , 2019, Cement and Concrete Composites.
[13] V. Kodur,et al. Effect of temperature on bond characteristics of geopolymer concrete , 2018 .
[14] S. Rossignol,et al. Influence of calcium addition on calcined brick clay based geopolymers: A thermal and FTIR spectroscopy study , 2017 .
[15] A. S. Paula,et al. Processing and Characterization of PET Composites Reinforced With Geopolymer Concrete Waste , 2017 .
[16] Ping Duan,et al. Compressive strength and microstructure of fly ash based geopolymer blended with silica fume under thermal cycle , 2017 .
[17] Y. Liew,et al. Thermal Resistance Variations of Fly Ash Geopolymers: Foaming Responses , 2017, Scientific Reports.
[18] Dibyendu Adak,et al. Structural performance of nano-silica modified fly-ash based geopolymer concrete , 2017 .
[19] Ali Akbarnezhad,et al. Estimation and Minimization of Embodied Carbon of Buildings: A Review , 2017 .
[20] Faiz Uddin Ahmed Shaikh,et al. Mechanical and durability properties of fly ash geopolymer concrete containing recycled coarse aggregates , 2016 .
[21] Haeng-Ki Lee,et al. Physicochemical properties of binder gel in alkali-activated fly ash/slag exposed to high temperatures , 2016 .
[22] Sanjay Kumar,et al. Synthesis of fly ash-calcined clay geopolymers: Reactivity, mechanical strength, structural and microstructural characteristics , 2016 .
[23] B. Hanumantha Rao,et al. A mix design procedure for geopolymer concrete with fly ash , 2016 .
[24] Hans-Carsten Kühne,et al. The effect of heat treatment on the mechanical and structural properties of one-part geopolymer-zeolite composites , 2016 .
[25] P. Rovnaník,et al. Thermal Behaviour of Metakaolin/Fly Ash Geopolymers with Chamotte Aggregate , 2016, Materials.
[26] E. Yang,et al. Alkali-activated ground granulated blast-furnace slag incorporating incinerator fly ash as a potential binder , 2016 .
[27] H. Khater. Effect of nano-silica on microstructure formation of low-cost geopolymer binder , 2016 .
[28] N. Lee,et al. Improved Reactivity of Fly Ash-Slag Geopolymer by the Addition of Silica Fume , 2016 .
[29] H. Brouwers,et al. Reaction kinetics, reaction products and compressive strength of ternary activators activated slag designed by Taguchi method , 2015 .
[30] Dibyendu Adak,et al. Effect of nano-silica on strength and durability of fly ash based geopolymer mortar , 2014 .
[31] Hao Wang,et al. Fly ash-based geopolymers: The relationship between composition, pore structure and efflorescence , 2014 .
[32] Mohd Zamin Jumaat,et al. Compressive strength and microstructural analysis of fly ash/palm oil fuel ash based geopolymer mortar under elevated temperatures , 2014 .
[33] P. P. Nomikos,et al. Potassium based geopolymer for passive fire protection of concrete tunnels linings , 2014 .
[34] V. Kodur,et al. Development of metakaolin–fly ash based geopolymers for fire resistance applications , 2014 .
[35] J. Sanjayan,et al. Effect of transient creep on compressive strength of geopolymer concrete for elevated temperature exposure , 2014 .
[36] Alaa M. Rashad,et al. The effect of activator concentration on the residual strength of alkali-activated fly ash pastes subjected to thermal load , 2011 .
[37] J. Temuujin,et al. Effect of fly ash preliminary calcination on the properties of geopolymer. , 2009, Journal of hazardous materials.
[38] A. Nourbakhsh,et al. Modeling and optimization of compressive strength and bulk density of metakaolin-based geopolymer using central composite design: A numerical and experimental study , 2017 .
[39] J. Davidovits,et al. Geopolymers: Ceramic-Like Inorganic Polymers , 2017 .
[40] L. Kopecký,et al. Geopolymer materials based on fly ash , 2005 .
[41] M. Taibi,et al. Porosity and fire resistance of fly ash based geopolymer , 2022 .