Cargando…

The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment

The southern tropical coastal areas of China are high-temperature and high-humidity salt environments, which hinder the durability and service life of ordinary asphalt pavement. To enhance the durability of asphalt pavement in these areas, modified bagasse fiber combined with nano-TiO(2) was used to...

Descripción completa

Detalles Bibliográficos
Autores principales: Xie, Zhenxiang, Tang, Liansheng, Tao, Mengru, Yang, Fangjian, Zhong, Qilin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488687/
https://www.ncbi.nlm.nih.gov/pubmed/37687688
http://dx.doi.org/10.3390/ma16175996
_version_ 1785103535258468352
author Xie, Zhenxiang
Tang, Liansheng
Tao, Mengru
Yang, Fangjian
Zhong, Qilin
author_facet Xie, Zhenxiang
Tang, Liansheng
Tao, Mengru
Yang, Fangjian
Zhong, Qilin
author_sort Xie, Zhenxiang
collection PubMed
description The southern tropical coastal areas of China are high-temperature and high-humidity salt environments, which hinder the durability and service life of ordinary asphalt pavement. To enhance the durability of asphalt pavement in these areas, modified bagasse fiber combined with nano-TiO(2) was used to improve the corrosion resistance of asphalt pavement in high-temperature and high-humidity salt environments. The micro-morphology, high-temperature oil absorption, high-temperature heat resistance, and hygroscopicity of bagasse fiber modified using three silane coupling agents combined with NaOH were compared, and the best silane coupling agent/NaOH modification scheme for bagasse fiber was found. Based on conventional physical tests (penetration, softening point, ductility), rheological property tests (rotational viscosity, dynamic shear rheological test, multi-stress creep recovery test, linear amplitude scanning test), and a four-point bending fatigue test of the asphalt mixture, the properties of modified bagasse fiber asphalt binder and mixture after cyclic dry–wet erosion under pure water and salt solution (NaCl, Na(2)SO(4)) were determined, and the effects of the erosion environment and fiber ratio on the basic physical and rheological properties of the asphalt were clarified. Compared with the silane coupling agents KH550 and KH590, the bagasse fiber modified with KH570/NaOH had a better high-temperature oil absorption capacity, heat stability capacity, and matrix asphalt compatibility. The worst erosion environment was Na(2)SO(4), but the increase in test temperature and fiber content weakened the sensitivity of the asphalt binder performance in different erosion environments. The erosion capacity order was as follows: Na(2)SO(4) > NaCl > pure water. In the worst erosion environment, 0.5% modified bagasse fiber/Nano-TiO(2) asphalt binder (B(n)(−570−0.5)) had the best corrosion resistance in a high-temperature and high-humidity salt environment. The penetration, softening point, creep recovery rate R(3.2), non-recoverable creep compliance J(nr)(3.2), and fatigue life after long-term aging (with 5% strain) of B(n-)(570-0.5) were, respectively, increased by −16.9%, 37.5%, 37.95%, −27.86%, and 38.30% compared with unblended base asphalt binder (B). In addition, the four-point flexural fatigue life of B(n-)(570-0.5) was 169.2% higher than that of the unblended base mixture.
format Online
Article
Text
id pubmed-10488687
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-104886872023-09-09 The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment Xie, Zhenxiang Tang, Liansheng Tao, Mengru Yang, Fangjian Zhong, Qilin Materials (Basel) Article The southern tropical coastal areas of China are high-temperature and high-humidity salt environments, which hinder the durability and service life of ordinary asphalt pavement. To enhance the durability of asphalt pavement in these areas, modified bagasse fiber combined with nano-TiO(2) was used to improve the corrosion resistance of asphalt pavement in high-temperature and high-humidity salt environments. The micro-morphology, high-temperature oil absorption, high-temperature heat resistance, and hygroscopicity of bagasse fiber modified using three silane coupling agents combined with NaOH were compared, and the best silane coupling agent/NaOH modification scheme for bagasse fiber was found. Based on conventional physical tests (penetration, softening point, ductility), rheological property tests (rotational viscosity, dynamic shear rheological test, multi-stress creep recovery test, linear amplitude scanning test), and a four-point bending fatigue test of the asphalt mixture, the properties of modified bagasse fiber asphalt binder and mixture after cyclic dry–wet erosion under pure water and salt solution (NaCl, Na(2)SO(4)) were determined, and the effects of the erosion environment and fiber ratio on the basic physical and rheological properties of the asphalt were clarified. Compared with the silane coupling agents KH550 and KH590, the bagasse fiber modified with KH570/NaOH had a better high-temperature oil absorption capacity, heat stability capacity, and matrix asphalt compatibility. The worst erosion environment was Na(2)SO(4), but the increase in test temperature and fiber content weakened the sensitivity of the asphalt binder performance in different erosion environments. The erosion capacity order was as follows: Na(2)SO(4) > NaCl > pure water. In the worst erosion environment, 0.5% modified bagasse fiber/Nano-TiO(2) asphalt binder (B(n)(−570−0.5)) had the best corrosion resistance in a high-temperature and high-humidity salt environment. The penetration, softening point, creep recovery rate R(3.2), non-recoverable creep compliance J(nr)(3.2), and fatigue life after long-term aging (with 5% strain) of B(n-)(570-0.5) were, respectively, increased by −16.9%, 37.5%, 37.95%, −27.86%, and 38.30% compared with unblended base asphalt binder (B). In addition, the four-point flexural fatigue life of B(n-)(570-0.5) was 169.2% higher than that of the unblended base mixture. MDPI 2023-08-31 /pmc/articles/PMC10488687/ /pubmed/37687688 http://dx.doi.org/10.3390/ma16175996 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Xie, Zhenxiang
Tang, Liansheng
Tao, Mengru
Yang, Fangjian
Zhong, Qilin
The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment
title The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment
title_full The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment
title_fullStr The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment
title_full_unstemmed The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment
title_short The Properties of Modified Bagasse Fiber/Nano-TiO(2) Composite Asphalt in a High-Temperature and High-Humidity Salt Environment
title_sort properties of modified bagasse fiber/nano-tio(2) composite asphalt in a high-temperature and high-humidity salt environment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488687/
https://www.ncbi.nlm.nih.gov/pubmed/37687688
http://dx.doi.org/10.3390/ma16175996
work_keys_str_mv AT xiezhenxiang thepropertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT tangliansheng thepropertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT taomengru thepropertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT yangfangjian thepropertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT zhongqilin thepropertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT xiezhenxiang propertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT tangliansheng propertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT taomengru propertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT yangfangjian propertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment
AT zhongqilin propertiesofmodifiedbagassefibernanotio2compositeasphaltinahightemperatureandhighhumiditysaltenvironment