Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder

This paper presents the mechanical properties of porous asphalt (PA) with nanosilica (NS) modified asphalt binder in terms of its Moisture Susceptibility. This test is essential to evaluate the performance of NS-PA towards the resistance of moisture induced damage. Moisture susceptibility can be def...

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Published in:IOP Conference Series: Earth and Environmental Science
Main Author: 2-s2.0-85063425260
Format: Conference paper
Language:English
Published: Institute of Physics Publishing 2019
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85063425260&doi=10.1088%2f1755-1315%2f244%2f1%2f012028&partnerID=40&md5=a3b405bf95208dd11bbe225d31e61b22
id Masri K.A.; Awang H.; Jaya R.P.; Ali M.I.; Ramli N.I.; Arshad A.K.
spelling Masri K.A.; Awang H.; Jaya R.P.; Ali M.I.; Ramli N.I.; Arshad A.K.
2-s2.0-85063425260
Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
2019
IOP Conference Series: Earth and Environmental Science
244
1
10.1088/1755-1315/244/1/012028
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85063425260&doi=10.1088%2f1755-1315%2f244%2f1%2f012028&partnerID=40&md5=a3b405bf95208dd11bbe225d31e61b22
This paper presents the mechanical properties of porous asphalt (PA) with nanosilica (NS) modified asphalt binder in terms of its Moisture Susceptibility. This test is essential to evaluate the performance of NS-PA towards the resistance of moisture induced damage. Moisture susceptibility can be defined as the loss durability, strength and stiffness of PA due to the existence of moisture, causing the adhesive loss of binder and aggregate. It is interesting to know that the existence of nanoparticle with different proportion can affect the moisture susceptibility behavior of NS-PA. Three different percentages of nanosilica were mixed with PEN 60-70 type of binder in this study. Then, all these blended modified binder were used to prepare PA Grading B specimens using Marshall Mix Design Method. Nanoparticle used in this study was Nanosilica with the average size of 10 to 15 nanometer. In addition, Moisture Susceptibility of NS-PA was evaluated using Indirect Tensile Strength Test, based on Modified Lottman Test. From the result, the maximum TSR value obtained at 2% NS-PA, which was 91%. Meanwhile, for conventional PA (0% NS), TSR value was only 74%. In accordance to AASTHOT283, TSR value should be equal or more than 80% to withstand moisture induced damage. However, for PA, 70% TSR value is consider acceptable due to porous nature of PA that permit water to flow inside the mix. From this result, it was concluded that the optimum amount of NS required for PA to withstand moisture induced damage was 2%. Thus, with proper NS concentration, the performance of PA with NS modified binder in terms of moisture susceptibility can be enhanced. © 2019 Published under licence by IOP Publishing Ltd.
Institute of Physics Publishing
17551307
English
Conference paper
All Open Access; Gold Open Access
author 2-s2.0-85063425260
spellingShingle 2-s2.0-85063425260
Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
author_facet 2-s2.0-85063425260
author_sort 2-s2.0-85063425260
title Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
title_short Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
title_full Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
title_fullStr Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
title_full_unstemmed Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
title_sort Moisture susceptibility of porous asphalt mixture with Nano silica modified asphalt binder
publishDate 2019
container_title IOP Conference Series: Earth and Environmental Science
container_volume 244
container_issue 1
doi_str_mv 10.1088/1755-1315/244/1/012028
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85063425260&doi=10.1088%2f1755-1315%2f244%2f1%2f012028&partnerID=40&md5=a3b405bf95208dd11bbe225d31e61b22
description This paper presents the mechanical properties of porous asphalt (PA) with nanosilica (NS) modified asphalt binder in terms of its Moisture Susceptibility. This test is essential to evaluate the performance of NS-PA towards the resistance of moisture induced damage. Moisture susceptibility can be defined as the loss durability, strength and stiffness of PA due to the existence of moisture, causing the adhesive loss of binder and aggregate. It is interesting to know that the existence of nanoparticle with different proportion can affect the moisture susceptibility behavior of NS-PA. Three different percentages of nanosilica were mixed with PEN 60-70 type of binder in this study. Then, all these blended modified binder were used to prepare PA Grading B specimens using Marshall Mix Design Method. Nanoparticle used in this study was Nanosilica with the average size of 10 to 15 nanometer. In addition, Moisture Susceptibility of NS-PA was evaluated using Indirect Tensile Strength Test, based on Modified Lottman Test. From the result, the maximum TSR value obtained at 2% NS-PA, which was 91%. Meanwhile, for conventional PA (0% NS), TSR value was only 74%. In accordance to AASTHOT283, TSR value should be equal or more than 80% to withstand moisture induced damage. However, for PA, 70% TSR value is consider acceptable due to porous nature of PA that permit water to flow inside the mix. From this result, it was concluded that the optimum amount of NS required for PA to withstand moisture induced damage was 2%. Thus, with proper NS concentration, the performance of PA with NS modified binder in terms of moisture susceptibility can be enhanced. © 2019 Published under licence by IOP Publishing Ltd.
publisher Institute of Physics Publishing
issn 17551307
language English
format Conference paper
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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