Fracture properties of geopolymer paste and concrete

Geopolymers are an emerging type of cementitious material purported to provide an environmentally friendly alternative to Portland cement-based concrete. This paper reports the results of experimental research on fracture properties (fracture energy and brittleness) of fly ash based geopolymer concr...

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Main Authors: Pan, Z., Sanjayan, J., Rangan, B. Vijaya
Format: Journal Article
Published: 2011
Online Access:http://hdl.handle.net/20.500.11937/55312
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author Pan, Z.
Sanjayan, J.
Rangan, B. Vijaya
author_facet Pan, Z.
Sanjayan, J.
Rangan, B. Vijaya
author_sort Pan, Z.
building Curtin Institutional Repository
collection Online Access
description Geopolymers are an emerging type of cementitious material purported to provide an environmentally friendly alternative to Portland cement-based concrete. This paper reports the results of experimental research on fracture properties (fracture energy and brittleness) of fly ash based geopolymer concrete and paste with various mix parameters. The characteristic length of the geopolymer concrete was approximately three times less than that of ordinary Portland cement (OPC) concrete, due to an increase in tensile splitting strength of about 28%, a decrease in elastic modulus of about 22% and a decrease in fracture energy of about 24%. The difference in characteristic length is similar to that reported between high-strength and normal-strength OPC concretes, indicating that the geopolymer concrete exhibits higher brittleness than its OPC counterpart. This trend was found to be consistent between pastes and concretes, implying that the difference between geopolymer and OPC concrete is due to the type of matrix formation (geopolymerisation or hydration). For geopolymer concretes made with different mix parameters, fracture properties are closely correlated to their compressive strength.
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spelling curtin-20.500.11937-553122017-09-13T16:11:12Z Fracture properties of geopolymer paste and concrete Pan, Z. Sanjayan, J. Rangan, B. Vijaya Geopolymers are an emerging type of cementitious material purported to provide an environmentally friendly alternative to Portland cement-based concrete. This paper reports the results of experimental research on fracture properties (fracture energy and brittleness) of fly ash based geopolymer concrete and paste with various mix parameters. The characteristic length of the geopolymer concrete was approximately three times less than that of ordinary Portland cement (OPC) concrete, due to an increase in tensile splitting strength of about 28%, a decrease in elastic modulus of about 22% and a decrease in fracture energy of about 24%. The difference in characteristic length is similar to that reported between high-strength and normal-strength OPC concretes, indicating that the geopolymer concrete exhibits higher brittleness than its OPC counterpart. This trend was found to be consistent between pastes and concretes, implying that the difference between geopolymer and OPC concrete is due to the type of matrix formation (geopolymerisation or hydration). For geopolymer concretes made with different mix parameters, fracture properties are closely correlated to their compressive strength. 2011 Journal Article http://hdl.handle.net/20.500.11937/55312 10.1680/macr.2011.63.10.763 unknown
spellingShingle Pan, Z.
Sanjayan, J.
Rangan, B. Vijaya
Fracture properties of geopolymer paste and concrete
title Fracture properties of geopolymer paste and concrete
title_full Fracture properties of geopolymer paste and concrete
title_fullStr Fracture properties of geopolymer paste and concrete
title_full_unstemmed Fracture properties of geopolymer paste and concrete
title_short Fracture properties of geopolymer paste and concrete
title_sort fracture properties of geopolymer paste and concrete
url http://hdl.handle.net/20.500.11937/55312