This paper addresses the fresh behaviors, gel structure, strength, porosity and drying shrinkage of alkali activated slag-fly ash composites designed by applying the modified Andreasen & Andersen model. The results show a large variation of slump flows and setting times when using different slag/fly ash ratios and activator moduli. The microstructure analyses by FTIR and TG show the gel structure remains stable after 1 d of curing, and mixes with higher slag contents and lower activator moduli show slightly higher bound water content. The main reaction product is a chain structured C-A-S-H type gel regardless of slag/fly ash ratio and activator modulus, but a slightly higher main absorption band is shown in samples with high fly ash content...
Alkali-activated materials offer the potential for more durable, sustainable and low-CO2 constructio...
This study aims to provide a better understanding of the autogenous shrinkage of slag and fly ash-ba...
The current study aims to develop a drying shrinkage model for alkali-activated slag concrete (AASC)...
This paper addresses the fresh behaviors, gel structure, strength, porosity and drying shrinkage of ...
\u3cp\u3eIn this paper, alkali activated slag-fly ash mortars were prepared by applying the modified...
In this paper, alkali activated slag-fly ash mortars were prepared by applying the modified Andrease...
The purpose of this study is to investigate the autogenous shrinkage of alkali-activated slag/fly as...
The drying shrinkage of alkali-activated fly ash/slag (AAFS) is an important engineering property fo...
Abstract One-part alkali-activated binders, also known as the “just-add-water” concept, have receiv...
Room temperature cured alkali activated slag/fly ash blends have shown their advantages in field app...
The engineering properties of alkali activated materials (AAMs) mainly depend on the constituent mat...
This study reports the changes in the compressive strength and shrinkage property of alkali-activate...
This paper presents the results of an experimental study performed to investigate the effect of acti...
This paper investigated physical mechanical and microstructural properties of alkali-activated binde...
Alkali-activated materials offer the potential for more durable, sustainable and low-CO2 constructio...
This study aims to provide a better understanding of the autogenous shrinkage of slag and fly ash-ba...
The current study aims to develop a drying shrinkage model for alkali-activated slag concrete (AASC)...
This paper addresses the fresh behaviors, gel structure, strength, porosity and drying shrinkage of ...
\u3cp\u3eIn this paper, alkali activated slag-fly ash mortars were prepared by applying the modified...
In this paper, alkali activated slag-fly ash mortars were prepared by applying the modified Andrease...
The purpose of this study is to investigate the autogenous shrinkage of alkali-activated slag/fly as...
The drying shrinkage of alkali-activated fly ash/slag (AAFS) is an important engineering property fo...
Abstract One-part alkali-activated binders, also known as the “just-add-water” concept, have receiv...
Room temperature cured alkali activated slag/fly ash blends have shown their advantages in field app...
The engineering properties of alkali activated materials (AAMs) mainly depend on the constituent mat...
This study reports the changes in the compressive strength and shrinkage property of alkali-activate...
This paper presents the results of an experimental study performed to investigate the effect of acti...
This paper investigated physical mechanical and microstructural properties of alkali-activated binde...
Alkali-activated materials offer the potential for more durable, sustainable and low-CO2 constructio...
This study aims to provide a better understanding of the autogenous shrinkage of slag and fly ash-ba...
The current study aims to develop a drying shrinkage model for alkali-activated slag concrete (AASC)...