Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles

Abstract Warm mix asphalt (WMA) is gaining increased attention in the asphalt paving industry as an eco-friendly and sustainable technology. WMA technologies are favorable in producing asphalt mixtures at temperatures 20–60 °C lower in comparison to conventional hot mix asphalt. This saves non-renew...

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Main Authors: Goshtasp Cheraghian, Michael P. Wistuba, Sajad Kiani, Andrew R. Barron, Ali Behnood
Format: Article
Language:English
Published: Nature Publishing Group 2021-06-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-90620-w
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spelling doaj-934221981aef4a73bf45aff5d7a3eb702021-06-06T11:39:00ZengNature Publishing GroupScientific Reports2045-23222021-06-0111112010.1038/s41598-021-90620-wRheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticlesGoshtasp Cheraghian0Michael P. Wistuba1Sajad Kiani2Andrew R. Barron3Ali Behnood4Braunschweig Pavement Engineering Centre, Technische Universität BraunschweigBraunschweig Pavement Engineering Centre, Technische Universität BraunschweigEnergy Safety Research Institute (ESRI), Swansea UniversityEnergy Safety Research Institute (ESRI), Swansea UniversityLyles School of Civil Engineering, Purdue UniversityAbstract Warm mix asphalt (WMA) is gaining increased attention in the asphalt paving industry as an eco-friendly and sustainable technology. WMA technologies are favorable in producing asphalt mixtures at temperatures 20–60 °C lower in comparison to conventional hot mix asphalt. This saves non-renewable fossil fuels, reduces energy consumption, and minimizes vapors and greenhouse gas emissions in the production, placement and conservation processes of asphalt mixtures. At the same time, this temperature reduction must not reduce the performance of asphalt pavements in-field. Low aging resistance, high moisture susceptibility, and low durability are generally seen as substantial drawbacks of WMA, which can lead to inferior pavement performance, and increased maintenance costs. This is partly due to the fact that low production temperature may increase the amount of water molecules trapped in the asphalt mixture. As a potential remedy, here we use fumed silica nanoparticles (FSN) have shown excellent potential in enhancing moisture and aging susceptibility of asphalt binders. In this study, asphalt binder modification by means of FSN was investigated, considering the effects of short-term and long-term aging on the rheological, thermal, and microstructural binder properties. This research paves the way for optimizing WMA by nanoparticles to present enhanced green asphalt technology.https://doi.org/10.1038/s41598-021-90620-w
collection DOAJ
language English
format Article
sources DOAJ
author Goshtasp Cheraghian
Michael P. Wistuba
Sajad Kiani
Andrew R. Barron
Ali Behnood
spellingShingle Goshtasp Cheraghian
Michael P. Wistuba
Sajad Kiani
Andrew R. Barron
Ali Behnood
Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
Scientific Reports
author_facet Goshtasp Cheraghian
Michael P. Wistuba
Sajad Kiani
Andrew R. Barron
Ali Behnood
author_sort Goshtasp Cheraghian
title Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
title_short Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
title_full Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
title_fullStr Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
title_full_unstemmed Rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
title_sort rheological, physicochemical, and microstructural properties of asphalt binder modified by fumed silica nanoparticles
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-06-01
description Abstract Warm mix asphalt (WMA) is gaining increased attention in the asphalt paving industry as an eco-friendly and sustainable technology. WMA technologies are favorable in producing asphalt mixtures at temperatures 20–60 °C lower in comparison to conventional hot mix asphalt. This saves non-renewable fossil fuels, reduces energy consumption, and minimizes vapors and greenhouse gas emissions in the production, placement and conservation processes of asphalt mixtures. At the same time, this temperature reduction must not reduce the performance of asphalt pavements in-field. Low aging resistance, high moisture susceptibility, and low durability are generally seen as substantial drawbacks of WMA, which can lead to inferior pavement performance, and increased maintenance costs. This is partly due to the fact that low production temperature may increase the amount of water molecules trapped in the asphalt mixture. As a potential remedy, here we use fumed silica nanoparticles (FSN) have shown excellent potential in enhancing moisture and aging susceptibility of asphalt binders. In this study, asphalt binder modification by means of FSN was investigated, considering the effects of short-term and long-term aging on the rheological, thermal, and microstructural binder properties. This research paves the way for optimizing WMA by nanoparticles to present enhanced green asphalt technology.
url https://doi.org/10.1038/s41598-021-90620-w
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