This work assessed the performance of rice husk ash (RHA)-based ASTM type I and type V (low tricalcium aluminate (C3A)) blended cement concrete mixtures subjected to a mixed magnesium–sodium sulfate environment for an immersion period up to 48 months. The concrete mixtures comprised a combination of two Portland cements (type I and type V) and two RHA-blended cements with two water-to-binder ratios of 0·35 and 0·45. In addition to fresh and strength properties, X-ray diffraction, differential scanning calorimetry, mercury intrusion porosimetry and rapid chloride permeability tests were conducted on all concrete mixtures to determine phase composition, pozzolanic activity, porosity and chloride ion resistance. Deterioration of concrete due to mixed sulfate attack and corrosion of reinforcing steel were evaluated by assessing concrete weight loss and measuring corrosion potentials and polarisation resistance at periodic intervals throughout the immersion period of 48 months. Plain (type I/V) cement concretes performed better in terms of deterioration and corrosion resistance than RHA-based type I/V blended cement concrete mixtures in a mixed sulfate environment.
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1 December 2014
Research Article|
June 28 2014
Performance of rice husk ash blended cement concretes subjected to sulfate environment
Khandaker M. A. Hossain;
Khandaker M. A. Hossain
Associate Professor, Department of Civil Engineering, Ryerson University, Toronto, ON, Canada
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Muhammed S. Anwar
Muhammed S. Anwar
Research Assistant, Department of Civil Engineering, Ryerson University, Toronto, ON, Canada
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Publisher: Emerald Publishing
Revision Received:
April 09 2014
Revision Requested:
May 09 2014
Accepted:
May 12 2014
Online ISSN: 1751-763X
Print ISSN: 0024-9831
ICE Publishing: All rights reserved
2014
Magazine of Concrete Research (2014) 66 (24): 1237–1249.
Article history
Revision Received:
April 09 2014
Revision Requested:
May 09 2014
Accepted:
May 12 2014
Citation
Hossain KMA, Anwar MS (2014), "Performance of rice husk ash blended cement concretes subjected to sulfate environment". Magazine of Concrete Research, Vol. 66 No. 24 pp. 1237–1249, doi: https://doi.org/10.1680/macr.14.00108
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