Shrinkage characteristics of alkali-activated fly ash/slag paste and mortar at early ages
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Haeng-Ki Lee | Jeong Gook Jang | H. Lee | Namkon Lee | J. Jang | N. Lee
[1] B. Vijaya Rangan,et al. Low-Calcium fly ash-based geopolymer concrete: Long-term properties , 2006 .
[2] Zhengwu Jiang,et al. Autogenous relative humidity change and autogenous shrinkage of high-performance cement pastes , 2005 .
[3] Ángel Palomo,et al. Alkali-activated fly ashes: A cement for the future , 1999 .
[4] D. Hardjito,et al. Strength and Setting Times of Low Calcium Fly Ash-based Geopolymer Mortar , 2008 .
[5] John L. Provis,et al. Microscopy and microanalysis of inorganic polymer cements. 1: remnant fly ash particles , 2009, Journal of Materials Science.
[6] G. Saoût,et al. Influence of slag chemistry on the hydration of alkali-activated blast-furnace slag — Part I: Effect of MgO , 2011 .
[7] Aaron R. Sakulich,et al. Mitigation of autogenous shrinkage in alkali activated slag mortars by internal curing , 2013 .
[8] K. Scrivener,et al. Hydration products of alkali activated slag cement , 1995 .
[9] Caijun Shi,et al. Some factors affecting early hydration of alkali-slag cements , 1996 .
[10] B. Rangan,et al. DEVELOPMENT AND PROPERTIES OF LOW-CALCIUM FLY ASH-BASED GEOPOLYMER CONCRETE , 2005 .
[11] S. E. Wallah,et al. Drying Shrinkage of Heat-Cured Fly Ash-Based Geopolymer Concrete , 2009 .
[12] Francisca Puertas,et al. Effect of Shrinkage-reducing Admixtures on the Properties of Alkali-activated Slag Mortars and Pastes , 2007 .
[13] M. Bouasker,et al. Early-age autogenous cracking of cementitious matrices: physico-chemical analysis and micro/macro investigations , 2011 .
[14] P. L. Pratt,et al. Alkali-activated slag cement and concrete: a review of properties and problems , 1995 .
[15] Rubina Chaudhary,et al. Mechanism of geopolymerization and factors influencing its development: a review , 2007 .
[16] Sifeng Liu,et al. Influence of Slag as Additive on Compressive Strength of Fly Ash-Based Geopolymer , 2007 .
[17] Fernando Pacheco-Torgal,et al. Alkali-activated binders: A review: Part 1. Historical background, terminology, reaction mechanisms and hydration products , 2008 .
[18] C. Yip,et al. Microanalysis of calcium silicate hydrate gel formed within a geopolymeric binder , 2003 .
[19] Yong-De Li,et al. Preliminary study on combined-alkali–slag paste materials , 2000 .
[20] Á. Palomo,et al. Microstructure Development of Alkali-Activated Fly Ash Cement: A Descriptive Model , 2005 .
[21] Frank Collins,et al. Effect of pore size distribution on drying shrinkage of alkali-activated slag concrete , 2000 .
[22] Longtu Li,et al. A review: The comparison between alkali-activated slag (Si + Ca) and metakaolin (Si + Al) cements , 2010 .
[23] J. Deventer,et al. Geopolymer technology: the current state of the art , 2007 .
[24] Frank Winnefeld,et al. Influence of activator type on hydration kinetics, hydrate assemblage and microstructural development of alkali activated blast-furnace slags , 2011 .
[25] Paramita Mondal,et al. Role of slag in microstructural development and hardening of fly ash-slag geopolymer , 2013 .
[26] R. Cloots,et al. (Micro)-structural comparison between geopolymers, alkali-activated slag cement and Portland cement , 2006 .
[27] J.S.J. van Deventer,et al. THE EFFECT OF COMPOSITION AND TEMPERATURE ON THE PROPERTIES OF FLY ASH- AND KAOLINITE -BASED GEOPOLYMERS , 2002 .
[28] J. Sanjayan,et al. Microcracking and strength development of alkali activated slag concrete , 2001 .
[29] Hua Xu. Geopolymerisation of aluminosilicate minerals , 2002 .
[30] Hjh Jos Brouwers,et al. The hydration of slag, part 1: reaction models for alkali-activated slag , 2007 .
[31] H. Lee,et al. Setting and mechanical properties of alkali-activated fly ash/slag concrete manufactured at room temperature , 2013 .
[32] Caijun Shi,et al. Strength, pore structure and permeability of alkali-activated slag mortars , 1996 .
[33] J. Deventer,et al. The geopolymerisation of alumino-silicate minerals , 2000 .
[34] Jay G. Sanjayan,et al. Effect of admixtures on properties of alkali-activated slag concrete , 2000 .
[35] Haeng-Ki Lee,et al. Alkali-activated, cementless, controlled low-strength materials (CLSM) utilizing industrial by-products , 2013 .
[36] H. Lee,et al. Fresh and hardened properties of alkali-activated fly ash/slag pastes with superplasticizers , 2014 .
[37] J. Deventer,et al. The coexistence of geopolymeric gel and calcium silicate hydrate at the early stage of alkaline activation , 2005 .
[38] Sir William Thomson F.R.S.. LX. On the equilibrium of vapour at a curved surface of liquid , 1871 .
[39] S. P. Mehrotra,et al. Influence of granulated blast furnace slag on the reaction, structure and properties of fly ash based geopolymer , 2010, Journal of Materials Science.
[40] V. M. Malhotra,et al. Properties and Durability of Alkali-Activated Slag Concrete , 1992 .
[41] Wellington Longuini Repette,et al. Drying and autogenous shrinkage of pastes and mortars with activated slag cement , 2008 .
[42] J. Deventer,et al. The Role of Inorganic Polymer Technology in the Development of ‘Green Concrete’ , 2007 .
[43] A. Loukili,et al. Chemical shrinkage of cement pastes and mortars at very early age : Effect of limestone filler and granular inclusions , 2008 .
[44] J. Deventer,et al. Modification of phase evolution in alkali-activated blast furnace slag by the incorporation of fly ash , 2014 .
[45] Pietro Lura,et al. Measurement of Volume Change in Cementitious Materials at Early Ages: Review of Testing Protocols and Interpretation of Results , 2006 .
[46] Frank Winnefeld,et al. Hydration of alkali-activated slag: comparison with ordinary Portland cement , 2006 .
[47] Jay G. Sanjayan,et al. Alkali activation of Australian slag cements , 1999 .