Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures

In this study, the effect of biochar on the high temperature resistance of cementitious paste was investigated using multiple experimental methods. The weight loss, cracks, residual compressive strength, and ultrasonic pulse velocity (UPV) of biochar cementitious paste with 2% and 5% biochar exposed...

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Main Authors: Xu Yang, Run-Sheng Lin, Yi Han, Xiao-Yong Wang
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/18/5414
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spelling doaj-9b384d91fdcc420e8690580e7d3ad0122021-09-26T00:37:28ZengMDPI AGMaterials1996-19442021-09-01145414541410.3390/ma14185414Behavior of Biochar-Modified Cementitious Composites Exposed to High TemperaturesXu Yang0Run-Sheng Lin1Yi Han2Xiao-Yong Wang3Department of Architectural Engineering, Kangwon National University, Chuncheon-si 24341, KoreaDepartment of Architectural Engineering, Kangwon National University, Chuncheon-si 24341, KoreaDepartment of Integrated Energy and Infra System, Kangwon National University, Chuncheon-si 24341, KoreaDepartment of Architectural Engineering, Kangwon National University, Chuncheon-si 24341, KoreaIn this study, the effect of biochar on the high temperature resistance of cementitious paste was investigated using multiple experimental methods. The weight loss, cracks, residual compressive strength, and ultrasonic pulse velocity (UPV) of biochar cementitious paste with 2% and 5% biochar exposed to 300, 550 and 900 °C were measured. The products and microstructures of biochar cementitious paste exposed to high temperatures were analyzed by X-ray diffraction, Fourier transform infrared spectroscopy, thermogravimetric analysis, and scanning electron microscopy. The results showed that the cracks of specimens exposed to high temperatures decreased with increasing biochar content. The addition of 2% and 5% biochar increased the residual compressive strength of the specimens exposed to 300 °C and the relative residual compressive strength at 550 °C. As the exposure temperature increased, the addition of biochar compensated for the decreasing ultrasonic pulse velocity. The addition of biochar contributed to the release of free water and bound water, and reduced the vapor pressure of the specimen. The addition of biochar did not change the types of functional groups and crystalline phases of the products of cementitious materials exposed to high temperatures. Biochar particles were difficult to observe at 900 °C in scanning electron microscopy images. In summary, because biochar has internal pores, it can improve the high-temperature resistance of cement paste.https://www.mdpi.com/1996-1944/14/18/5414biocharhigh temperatureresidual strengthmeso crackmicrostructures
collection DOAJ
language English
format Article
sources DOAJ
author Xu Yang
Run-Sheng Lin
Yi Han
Xiao-Yong Wang
spellingShingle Xu Yang
Run-Sheng Lin
Yi Han
Xiao-Yong Wang
Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures
Materials
biochar
high temperature
residual strength
meso crack
microstructures
author_facet Xu Yang
Run-Sheng Lin
Yi Han
Xiao-Yong Wang
author_sort Xu Yang
title Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures
title_short Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures
title_full Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures
title_fullStr Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures
title_full_unstemmed Behavior of Biochar-Modified Cementitious Composites Exposed to High Temperatures
title_sort behavior of biochar-modified cementitious composites exposed to high temperatures
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-09-01
description In this study, the effect of biochar on the high temperature resistance of cementitious paste was investigated using multiple experimental methods. The weight loss, cracks, residual compressive strength, and ultrasonic pulse velocity (UPV) of biochar cementitious paste with 2% and 5% biochar exposed to 300, 550 and 900 °C were measured. The products and microstructures of biochar cementitious paste exposed to high temperatures were analyzed by X-ray diffraction, Fourier transform infrared spectroscopy, thermogravimetric analysis, and scanning electron microscopy. The results showed that the cracks of specimens exposed to high temperatures decreased with increasing biochar content. The addition of 2% and 5% biochar increased the residual compressive strength of the specimens exposed to 300 °C and the relative residual compressive strength at 550 °C. As the exposure temperature increased, the addition of biochar compensated for the decreasing ultrasonic pulse velocity. The addition of biochar contributed to the release of free water and bound water, and reduced the vapor pressure of the specimen. The addition of biochar did not change the types of functional groups and crystalline phases of the products of cementitious materials exposed to high temperatures. Biochar particles were difficult to observe at 900 °C in scanning electron microscopy images. In summary, because biochar has internal pores, it can improve the high-temperature resistance of cement paste.
topic biochar
high temperature
residual strength
meso crack
microstructures
url https://www.mdpi.com/1996-1944/14/18/5414
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AT runshenglin behaviorofbiocharmodifiedcementitiouscompositesexposedtohightemperatures
AT yihan behaviorofbiocharmodifiedcementitiouscompositesexposedtohightemperatures
AT xiaoyongwang behaviorofbiocharmodifiedcementitiouscompositesexposedtohightemperatures
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