Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers

This study reports the effect of heat curing at 120 °C on the geopolymeric reaction and strength evolution in brown coal fly ash based geopolymer mortar and concrete. Moreover, an examination of this temperature profile of large size geopolymer concrete specimens is also reported. The speci...

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Main Authors: Chamila Gunasekara, Rahmat Dirgantara, David W. Law, Sujeeva Setunge
Format: Article
Language:English
Published: MDPI AG 2019-08-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/15/3138
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spelling doaj-fd34ac56a7ad48bca1ea4fab8203c1ba2020-11-25T01:55:47ZengMDPI AGApplied Sciences2076-34172019-08-01915313810.3390/app9153138app9153138Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash GeopolymersChamila Gunasekara0Rahmat Dirgantara1David W. Law2Sujeeva Setunge3Civil and Infrastructure Engineering, School of Engineering, RMIT University, Melbourne, VIC 3000, AustraliaCivil Engineering Department, Faculty of Computer and Engineering, Universitas Harapan, Medan 20216, IndonesiaCivil and Infrastructure Engineering, School of Engineering, RMIT University, Melbourne, VIC 3000, AustraliaCivil and Infrastructure Engineering, School of Engineering, RMIT University, Melbourne, VIC 3000, AustraliaThis study reports the effect of heat curing at 120 °C on the geopolymeric reaction and strength evolution in brown coal fly ash based geopolymer mortar and concrete. Moreover, an examination of this temperature profile of large size geopolymer concrete specimens is also reported. The specimen temperature and size were observed to influence the conversion from the glassy (amorphous) phases to the crystalline phases and the microstructure development of the geopolymer. The temperature profile could be divided into three principal stages which correlated well with the proposed reaction mechanism for class F fly ash geopolymers. The geopolymerisation progressed more rapidly for the mortar specimens than the concrete specimens with 12 to 14 h providing an optimum curing time for the 50 mm mortar cubes and 24 h being the optimum time for the 100 mm concrete cubes. The 50 mm and 100 mm concrete specimens’ compressive strengths in excess of 30 MPa could be obtained at 7 days. The structural integrity was not achieved at the center of 200 mm and 300 mm concrete specimens following 24 h curing at 120 °C. Hence, the optimal curing time required to achieve the best compressive strength for brown coal geopolymer was identified as being dependent on the specimen size.https://www.mdpi.com/2076-3417/9/15/3138geopolymerbrown coal fly ashcompressive strengthheat curingporosityX-ray computed tomography
collection DOAJ
language English
format Article
sources DOAJ
author Chamila Gunasekara
Rahmat Dirgantara
David W. Law
Sujeeva Setunge
spellingShingle Chamila Gunasekara
Rahmat Dirgantara
David W. Law
Sujeeva Setunge
Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers
Applied Sciences
geopolymer
brown coal fly ash
compressive strength
heat curing
porosity
X-ray computed tomography
author_facet Chamila Gunasekara
Rahmat Dirgantara
David W. Law
Sujeeva Setunge
author_sort Chamila Gunasekara
title Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers
title_short Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers
title_full Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers
title_fullStr Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers
title_full_unstemmed Effect of Curing Conditions on Microstructure and Pore-Structure of Brown Coal Fly Ash Geopolymers
title_sort effect of curing conditions on microstructure and pore-structure of brown coal fly ash geopolymers
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-08-01
description This study reports the effect of heat curing at 120 °C on the geopolymeric reaction and strength evolution in brown coal fly ash based geopolymer mortar and concrete. Moreover, an examination of this temperature profile of large size geopolymer concrete specimens is also reported. The specimen temperature and size were observed to influence the conversion from the glassy (amorphous) phases to the crystalline phases and the microstructure development of the geopolymer. The temperature profile could be divided into three principal stages which correlated well with the proposed reaction mechanism for class F fly ash geopolymers. The geopolymerisation progressed more rapidly for the mortar specimens than the concrete specimens with 12 to 14 h providing an optimum curing time for the 50 mm mortar cubes and 24 h being the optimum time for the 100 mm concrete cubes. The 50 mm and 100 mm concrete specimens’ compressive strengths in excess of 30 MPa could be obtained at 7 days. The structural integrity was not achieved at the center of 200 mm and 300 mm concrete specimens following 24 h curing at 120 °C. Hence, the optimal curing time required to achieve the best compressive strength for brown coal geopolymer was identified as being dependent on the specimen size.
topic geopolymer
brown coal fly ash
compressive strength
heat curing
porosity
X-ray computed tomography
url https://www.mdpi.com/2076-3417/9/15/3138
work_keys_str_mv AT chamilagunasekara effectofcuringconditionsonmicrostructureandporestructureofbrowncoalflyashgeopolymers
AT rahmatdirgantara effectofcuringconditionsonmicrostructureandporestructureofbrowncoalflyashgeopolymers
AT davidwlaw effectofcuringconditionsonmicrostructureandporestructureofbrowncoalflyashgeopolymers
AT sujeevasetunge effectofcuringconditionsonmicrostructureandporestructureofbrowncoalflyashgeopolymers
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