Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification

The physical, chemical and morphology characteristics of the ceramic source enable its waste to be a novel modifier for bitumen. This study employed the top-down approach via dry grinding in a mechanical ball mill to generate a nanoceramic powder (NCP). As a result, NCP was successfully generated wi...

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發表在:International Journal of Pavement Engineering
主要作者: 2-s2.0-85070814684
格式: Article
語言:English
出版: Taylor and Francis Ltd. 2021
在線閱讀:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85070814684&doi=10.1080%2f10298436.2019.1650277&partnerID=40&md5=c2df793afcd14779ebf36f4daa694631
id Hussein A.A.; Putra Jaya R.; Yaacob H.; Abdul Hassan N.; Oleiwi Aletba S.R.; Huseien G.F.; Shaffie E.; Mohd Hasan M.R.
spelling Hussein A.A.; Putra Jaya R.; Yaacob H.; Abdul Hassan N.; Oleiwi Aletba S.R.; Huseien G.F.; Shaffie E.; Mohd Hasan M.R.
2-s2.0-85070814684
Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
2021
International Journal of Pavement Engineering
22
7
10.1080/10298436.2019.1650277
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85070814684&doi=10.1080%2f10298436.2019.1650277&partnerID=40&md5=c2df793afcd14779ebf36f4daa694631
The physical, chemical and morphology characteristics of the ceramic source enable its waste to be a novel modifier for bitumen. This study employed the top-down approach via dry grinding in a mechanical ball mill to generate a nanoceramic powder (NCP). As a result, NCP was successfully generated with an optimum duration of 15 h and optimum Ball-to-Powder Ratio (BPR) of 10:1. The results also indicated that the particle size of NCP was significantly decreased to less than 100 nm. XRD pattern and Scanning Electron Microscopy (SEM) of the NCP-modified bitumen (NCPMB) indicated good dispersion of the NCP within the bitumen matrix. This improvement led, in turn, to decrease in the penetration and to increase in softening point and rutting resistance factor (G*/sin δ) of the NCPMB. In addition, the contact angle results indicated that the presence of NCP increased the number of heteroatoms and, hence, the polarity of the modified bitumen, thereby improving the adhesion of bitumen toward the aggregate. A small difference in softening point between the top and bottom is an indicator of NCPMB with good high-temperature storage stability. Asphalt Pavement Analyser (APA) outcomes reaffirmed the structural improvement of the modified asphalt mixture and rutting resistance was increased. © 2019 Informa UK Limited, trading as Taylor & Francis Group.
Taylor and Francis Ltd.
10298436
English
Article

author 2-s2.0-85070814684
spellingShingle 2-s2.0-85070814684
Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
author_facet 2-s2.0-85070814684
author_sort 2-s2.0-85070814684
title Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
title_short Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
title_full Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
title_fullStr Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
title_full_unstemmed Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
title_sort Physical, chemical and morphology characterisation of nano ceramic powder as bitumen modification
publishDate 2021
container_title International Journal of Pavement Engineering
container_volume 22
container_issue 7
doi_str_mv 10.1080/10298436.2019.1650277
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85070814684&doi=10.1080%2f10298436.2019.1650277&partnerID=40&md5=c2df793afcd14779ebf36f4daa694631
description The physical, chemical and morphology characteristics of the ceramic source enable its waste to be a novel modifier for bitumen. This study employed the top-down approach via dry grinding in a mechanical ball mill to generate a nanoceramic powder (NCP). As a result, NCP was successfully generated with an optimum duration of 15 h and optimum Ball-to-Powder Ratio (BPR) of 10:1. The results also indicated that the particle size of NCP was significantly decreased to less than 100 nm. XRD pattern and Scanning Electron Microscopy (SEM) of the NCP-modified bitumen (NCPMB) indicated good dispersion of the NCP within the bitumen matrix. This improvement led, in turn, to decrease in the penetration and to increase in softening point and rutting resistance factor (G*/sin δ) of the NCPMB. In addition, the contact angle results indicated that the presence of NCP increased the number of heteroatoms and, hence, the polarity of the modified bitumen, thereby improving the adhesion of bitumen toward the aggregate. A small difference in softening point between the top and bottom is an indicator of NCPMB with good high-temperature storage stability. Asphalt Pavement Analyser (APA) outcomes reaffirmed the structural improvement of the modified asphalt mixture and rutting resistance was increased. © 2019 Informa UK Limited, trading as Taylor & Francis Group.
publisher Taylor and Francis Ltd.
issn 10298436
language English
format Article
accesstype
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