COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES

The compressive strength, modulus and stress-strain behaviour of rapid-hardening sulfoaluminate cement concrete were evaluated as functions of the temperature increase. The compressive strength decreased from 51.3 to 31.1 MPa (around a 39% reduction) as the temperature increased from 20 ̊C to 300 ̊C...

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Main Authors: Jean Jacques Kouadjo Tchekwagep, Shoude Wang, Mukhopadhyay Anol K, Huang Shifeng, Cheng Xin
Format: Article
Language:English
Published: University of Chemistry and Technology, Prague 2020-06-01
Series:Ceramics-Silikáty
Subjects:
Online Access: http://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1334
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spelling doaj-4bd4fcc7d50d484f81c0e90f4f1512782020-11-25T03:39:29ZengUniversity of Chemistry and Technology, PragueCeramics-Silikáty0862-54681804-58472020-06-0164329930910.13168/cs.2020.001910.13168/cs.2020.0019.20200817064136COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURESJean Jacques Kouadjo Tchekwagep0Shoude Wang1Mukhopadhyay Anol K2Huang Shifeng3Cheng Xin4 Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, University of Jinan, Shandong 250022, China Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, University of Jinan, Shandong 250022, China Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, University of Jinan, Shandong 250022, China Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, University of Jinan, Shandong 250022, China Shandong Provincial Key Laboratory of Preparation and Measurement of Building Materials, University of Jinan, Shandong 250022, China The compressive strength, modulus and stress-strain behaviour of rapid-hardening sulfoaluminate cement concrete were evaluated as functions of the temperature increase. The compressive strength decreased from 51.3 to 31.1 MPa (around a 39% reduction) as the temperature increased from 20 ̊C to 300 ̊C while the specimens burst at 400 ˚C before being removed from the furnace. A significant change in the stress-strain behaviour was noticed with an increasing temperature. For the control specimens (20 ̊C), linear elastic behaviour was followed by plastic deformation before reaching the peak stress prior to failure, but for higher temperatures, the modulus of elasticity was up to 85% lower and was characterised by a gradually decreasing slope until failure. The micro-structural changes detected by SEM, DTG/TG and XRD were consistent with this pattern. The degree of cracking at the interfacial transition zone and crack-width growth detected by SEM followed a clear trend with the increasing temperature. The transformation of the primary hydration products (e.g., ettringite and Al(OH)₃) as detected by XRD and DTG/TG provides a useful explanation of the strength reduction with the increasing temperature up to 300 ̊C. The vapour pressure evolvement within the specimens at elevated temperatures correlates well with the reduced strength and modulus of elasticity, with a very intense effect at 400̊C http://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1334 sulfoaluminate cement concrete high temperatures change strength characteristics compressive strength
collection DOAJ
language English
format Article
sources DOAJ
author Jean Jacques Kouadjo Tchekwagep
Shoude Wang
Mukhopadhyay Anol K
Huang Shifeng
Cheng Xin
spellingShingle Jean Jacques Kouadjo Tchekwagep
Shoude Wang
Mukhopadhyay Anol K
Huang Shifeng
Cheng Xin
COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES
Ceramics-Silikáty
sulfoaluminate cement concrete
high temperatures
change strength characteristics
compressive strength
author_facet Jean Jacques Kouadjo Tchekwagep
Shoude Wang
Mukhopadhyay Anol K
Huang Shifeng
Cheng Xin
author_sort Jean Jacques Kouadjo Tchekwagep
title COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES
title_short COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES
title_full COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES
title_fullStr COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES
title_full_unstemmed COMPRESSIVE STRENGTH OF RAPID SULFOALUMINATE CEMENT CONCRETE EXPOSED TO ELEVATED TEMPERATURES
title_sort compressive strength of rapid sulfoaluminate cement concrete exposed to elevated temperatures
publisher University of Chemistry and Technology, Prague
series Ceramics-Silikáty
issn 0862-5468
1804-5847
publishDate 2020-06-01
description The compressive strength, modulus and stress-strain behaviour of rapid-hardening sulfoaluminate cement concrete were evaluated as functions of the temperature increase. The compressive strength decreased from 51.3 to 31.1 MPa (around a 39% reduction) as the temperature increased from 20 ̊C to 300 ̊C while the specimens burst at 400 ˚C before being removed from the furnace. A significant change in the stress-strain behaviour was noticed with an increasing temperature. For the control specimens (20 ̊C), linear elastic behaviour was followed by plastic deformation before reaching the peak stress prior to failure, but for higher temperatures, the modulus of elasticity was up to 85% lower and was characterised by a gradually decreasing slope until failure. The micro-structural changes detected by SEM, DTG/TG and XRD were consistent with this pattern. The degree of cracking at the interfacial transition zone and crack-width growth detected by SEM followed a clear trend with the increasing temperature. The transformation of the primary hydration products (e.g., ettringite and Al(OH)₃) as detected by XRD and DTG/TG provides a useful explanation of the strength reduction with the increasing temperature up to 300 ̊C. The vapour pressure evolvement within the specimens at elevated temperatures correlates well with the reduced strength and modulus of elasticity, with a very intense effect at 400̊C
topic sulfoaluminate cement concrete
high temperatures
change strength characteristics
compressive strength
url http://www.ceramics-silikaty.cz/index.php?page=cs_detail_doi&id=1334
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