Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation

© 2015 Elsevier Ltd. All rights reserved. This paper presents mechanical and micromechanical properties of alkali activated fly-ash cement (AAFA) based on statistical analysis with nano-indentation test. Mix proportions of AAFA are designed using Taguchi's approach. Four variables viz, silica f...

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Main Authors: Lee, H., Vimonsatit, Vanissorn, Chindaprasirt, P.
Format: Journal Article
Published: 2016
Online Access:http://hdl.handle.net/20.500.11937/9477
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author Lee, H.
Vimonsatit, Vanissorn
Chindaprasirt, P.
author_facet Lee, H.
Vimonsatit, Vanissorn
Chindaprasirt, P.
author_sort Lee, H.
building Curtin Institutional Repository
collection Online Access
description © 2015 Elsevier Ltd. All rights reserved. This paper presents mechanical and micromechanical properties of alkali activated fly-ash cement (AAFA) based on statistical analysis with nano-indentation test. Mix proportions of AAFA are designed using Taguchi's approach. Four variables viz, silica fume (SF), sand to cementitious material ratio (s/c), liquid to solid ratio (l/s) and superplasticiser (SP) content were the parameters tested. Indentation elastic modulus, hardness and packing density are studied. The results show that the increase in sand has the greatest contribution to the increase in density. For compressive strength, normal paste without SF, sand and SP with l/s of 0.6 gives the highest strength and the increase in SF significantly contributes to the adverse effect on compressive strength. For the indentation data, the analysis using deconvolution technique confirms the four phases of reaction products of AAFA. The main phase is sodium aluminosilicate hydrate (N-A-S-H), which is over 40% of the volume fraction. The microporomechanics of AAFA paste and mortar also demonstrate the relationships between the N-A-S-H volume fraction and strength; and activation degree and strength.
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spelling curtin-20.500.11937-94772017-09-13T14:53:17Z Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation Lee, H. Vimonsatit, Vanissorn Chindaprasirt, P. © 2015 Elsevier Ltd. All rights reserved. This paper presents mechanical and micromechanical properties of alkali activated fly-ash cement (AAFA) based on statistical analysis with nano-indentation test. Mix proportions of AAFA are designed using Taguchi's approach. Four variables viz, silica fume (SF), sand to cementitious material ratio (s/c), liquid to solid ratio (l/s) and superplasticiser (SP) content were the parameters tested. Indentation elastic modulus, hardness and packing density are studied. The results show that the increase in sand has the greatest contribution to the increase in density. For compressive strength, normal paste without SF, sand and SP with l/s of 0.6 gives the highest strength and the increase in SF significantly contributes to the adverse effect on compressive strength. For the indentation data, the analysis using deconvolution technique confirms the four phases of reaction products of AAFA. The main phase is sodium aluminosilicate hydrate (N-A-S-H), which is over 40% of the volume fraction. The microporomechanics of AAFA paste and mortar also demonstrate the relationships between the N-A-S-H volume fraction and strength; and activation degree and strength. 2016 Journal Article http://hdl.handle.net/20.500.11937/9477 10.1016/j.conbuildmat.2015.12.013 restricted
spellingShingle Lee, H.
Vimonsatit, Vanissorn
Chindaprasirt, P.
Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
title Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
title_full Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
title_fullStr Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
title_full_unstemmed Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
title_short Mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
title_sort mechanical and micromechanical properties of alkali activated fly-ash cement based on nano-indentation
url http://hdl.handle.net/20.500.11937/9477