Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures

To study the influence of basalt fibers on the viscoelastic mechanical properties of asphalt concrete (AC) mixtures, unconfined compressive dynamic modulus tests were performed on styrene–butadiene–styrene (SBS)-modified AC mixtures reinforced with various contents of basalt fibers ranging from 0.2...

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Main Authors: Zhang Yongjun, Luo Wenbo, Liu Xiu
Format: Article
Language:English
Published: De Gruyter 2021-09-01
Series:Science and Engineering of Composite Materials
Subjects:
Online Access:https://doi.org/10.1515/secm-2021-0047
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spelling doaj-0b500bfce8a34f50bc7acf21c916896a2021-10-03T07:42:44ZengDe GruyterScience and Engineering of Composite Materials2191-03592021-09-0128148949810.1515/secm-2021-0047Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixturesZhang Yongjun0Luo Wenbo1Liu Xiu2College of Civil Engineering and Mechanics, Xiangtan University, Xiangtan 411105, ChinaCollege of Civil Engineering and Mechanics, Xiangtan University, Xiangtan 411105, ChinaCollege of Civil Engineering and Mechanics, Xiangtan University, Xiangtan 411105, ChinaTo study the influence of basalt fibers on the viscoelastic mechanical properties of asphalt concrete (AC) mixtures, unconfined compressive dynamic modulus tests were performed on styrene–butadiene–styrene (SBS)-modified AC mixtures reinforced with various contents of basalt fibers ranging from 0.2 to 0.5% by weight at five temperatures and six load frequencies, and the dynamic moduli and phase angles of the mixtures were measured. Compared with the test results of the control mixture (with no basalt fibers), the data show that the high-temperature dynamic modulus of the mixtures initially increases and subsequently decreases with increasing fiber content and reaches its maximum value when the basalt fiber content is 0.3%, while the low-temperature dynamic modulus decreases monotonically with increasing fiber content. Furthermore, the phase angle of the mixtures initially decreases and later increases with increasing fiber content and reaches its minimum value when the basalt fiber content is 0.3%. These behaviors indicate that the addition of basalt fiber improves the high-temperature rutting resistance and low-temperature cracking resistance of the SBS-modified AC mixtures. In addition, the results of the wheel rut test exhibit a good correlation with the results of the dynamic modulus test, revealing the reliability of the dynamic modulus test for evaluating the high-temperature rutting resistance of basalt-fiber-reinforced AC mixtures.https://doi.org/10.1515/secm-2021-0047basalt-fiber-reinforced asphalt mixturedynamic modulusphase angle
collection DOAJ
language English
format Article
sources DOAJ
author Zhang Yongjun
Luo Wenbo
Liu Xiu
spellingShingle Zhang Yongjun
Luo Wenbo
Liu Xiu
Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
Science and Engineering of Composite Materials
basalt-fiber-reinforced asphalt mixture
dynamic modulus
phase angle
author_facet Zhang Yongjun
Luo Wenbo
Liu Xiu
author_sort Zhang Yongjun
title Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
title_short Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
title_full Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
title_fullStr Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
title_full_unstemmed Experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
title_sort experimental studies on the dynamic viscoelastic properties of basalt fiber-reinforced asphalt mixtures
publisher De Gruyter
series Science and Engineering of Composite Materials
issn 2191-0359
publishDate 2021-09-01
description To study the influence of basalt fibers on the viscoelastic mechanical properties of asphalt concrete (AC) mixtures, unconfined compressive dynamic modulus tests were performed on styrene–butadiene–styrene (SBS)-modified AC mixtures reinforced with various contents of basalt fibers ranging from 0.2 to 0.5% by weight at five temperatures and six load frequencies, and the dynamic moduli and phase angles of the mixtures were measured. Compared with the test results of the control mixture (with no basalt fibers), the data show that the high-temperature dynamic modulus of the mixtures initially increases and subsequently decreases with increasing fiber content and reaches its maximum value when the basalt fiber content is 0.3%, while the low-temperature dynamic modulus decreases monotonically with increasing fiber content. Furthermore, the phase angle of the mixtures initially decreases and later increases with increasing fiber content and reaches its minimum value when the basalt fiber content is 0.3%. These behaviors indicate that the addition of basalt fiber improves the high-temperature rutting resistance and low-temperature cracking resistance of the SBS-modified AC mixtures. In addition, the results of the wheel rut test exhibit a good correlation with the results of the dynamic modulus test, revealing the reliability of the dynamic modulus test for evaluating the high-temperature rutting resistance of basalt-fiber-reinforced AC mixtures.
topic basalt-fiber-reinforced asphalt mixture
dynamic modulus
phase angle
url https://doi.org/10.1515/secm-2021-0047
work_keys_str_mv AT zhangyongjun experimentalstudiesonthedynamicviscoelasticpropertiesofbasaltfiberreinforcedasphaltmixtures
AT luowenbo experimentalstudiesonthedynamicviscoelasticpropertiesofbasaltfiberreinforcedasphaltmixtures
AT liuxiu experimentalstudiesonthedynamicviscoelasticpropertiesofbasaltfiberreinforcedasphaltmixtures
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