Javascript must be enabled to continue!
Benefits of Sealed-Curing on Compressive Strength of Fly Ash-Based Geopolymers
View through CrossRef
There is no standardized procedure for producing geopolymers; therefore, many researchers develop their own procedures for mixing and curing to achieve good workability and strength development. The curing scheme adopted is important in achieving maximum performance of resultant geopolymers. In this study, we evaluated the impact of sealed and unsealed curing on mechanical strength of geopolymers. Fly ash-based geopolymers cured in sealed and unsealed moulds clearly revealed that retention of water during curing resulted in superior strength development. The average compressive strength of sealed-cured geopolymers measured after 1 day of curing was a modest 50 MPa, while after 7 day curing the average compressive strength increased to 120~135 MPa. In the unsealed specimens the average compressive strength of geopolymers was lower; ranging from 60 to 90 MPa with a slight increase as the curing period increased. Microcracking caused by dehydration is postulated to cause the strength decrease in the unsealed cured samples. These results show that water is a crucial component for the evolution of high strength three-dimensional cross-linked networks in geopolymers.
Title: Benefits of Sealed-Curing on Compressive Strength of Fly Ash-Based Geopolymers
Description:
There is no standardized procedure for producing geopolymers; therefore, many researchers develop their own procedures for mixing and curing to achieve good workability and strength development.
The curing scheme adopted is important in achieving maximum performance of resultant geopolymers.
In this study, we evaluated the impact of sealed and unsealed curing on mechanical strength of geopolymers.
Fly ash-based geopolymers cured in sealed and unsealed moulds clearly revealed that retention of water during curing resulted in superior strength development.
The average compressive strength of sealed-cured geopolymers measured after 1 day of curing was a modest 50 MPa, while after 7 day curing the average compressive strength increased to 120~135 MPa.
In the unsealed specimens the average compressive strength of geopolymers was lower; ranging from 60 to 90 MPa with a slight increase as the curing period increased.
Microcracking caused by dehydration is postulated to cause the strength decrease in the unsealed cured samples.
These results show that water is a crucial component for the evolution of high strength three-dimensional cross-linked networks in geopolymers.
Related Results
Partial Replacement of Cement with Fly ash in Concrete
Partial Replacement of Cement with Fly ash in Concrete
This research investigates the utilization of fly ash, a byproduct of thermal power plants, as a partial replacement for cement in M25 concrete, aiming to enhance sustainability an...
Characteristics for Improvement of Compressive Strength of Geopolymers Made of Mixed Binders
Characteristics for Improvement of Compressive Strength of Geopolymers Made of Mixed Binders
Geopolymers are composite hard materials made by mixing binders, such as fly ash and slags, and activators, such as NaOH and sodium silicate. The chemical mechanism for hardening c...
Investigating the Effects of Fly Ash on the Microstructure and Properties of Aluminium Composites using Taguchi Method
Investigating the Effects of Fly Ash on the Microstructure and Properties of Aluminium Composites using Taguchi Method
Abstract
This study aims to investigate the effect of fly ash addition on the mechanical and tribological properties of Al 1100 alloy. Fly ash, a waste by-product from auto...
Mechanical Properties of Fly Ash, Gravel, and Epoxy Resin Minerals Composite
Mechanical Properties of Fly Ash, Gravel, and Epoxy Resin Minerals Composite
This study aims to develop mineral composites for machine tool beds. This study utilizes fly ash from coal power plants with gravel rocks. The gravel size was reduced in the ball m...
Strengths of Geo Polymer Concrete by Adding Metakaoline
Strengths of Geo Polymer Concrete by Adding Metakaoline
Based0on the results obtained from this study0,the following Conclusions seems to be valid. The increase0in percentage replacement of Fly Ash with Metakaoline from 0% to 10.00% cau...
Research on Mechanical Characteristics and Crack Resistance of Fly Ash Sandstone Tunnel Slag Cement Stabilized Material
Research on Mechanical Characteristics and Crack Resistance of Fly Ash Sandstone Tunnel Slag Cement Stabilized Material
Abstract
To investigate the influence of fly ash on the mechanical and crack resistance properties of cement stabilized materials, the aggregate gradation was determined ba...
Mode I Fracture Behavior of Metakaolin-Based Geopolymers Made of Mine Tailings
Mode I Fracture Behavior of Metakaolin-Based Geopolymers Made of Mine Tailings
ABSTRACT:
Converting mine tailings rich in aluminum oxide and silicon dioxide into a geopolymer using an alkali activator offers an eco-friendly solution for miti...
Systematic multiscale models to predict the compressive strength of fly ash-based geopolymer concrete at various mixture proportions and curing regimes
Systematic multiscale models to predict the compressive strength of fly ash-based geopolymer concrete at various mixture proportions and curing regimes
Geopolymer concrete is an inorganic concrete that uses industrial or agro by-product ashes as the main binder instead of ordinary Portland cement; this leads to the geopolymer conc...

