Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder
Recently, the interest among researchers in nanopolymers used in modified binders has increased in order to achieve high performance of the bituminous mixture. This work presents a study on HMA with different nanopolymer proportions and different mix gradation types conducted to evaluate the rheolog...
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Springer Science and Business Media Deutschland GmbH
2022
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2-s2.0-85128747219 Shaffie E.; Kamil Arshad A.; Ahmad J.; Hashim W.; Putra Jaya R.; Azman Masri K.; Amin Shafii M.; Yacoob H. Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder 2022 Lecture Notes in Civil Engineering 215 10.1007/978-981-16-7924-7_90 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85128747219&doi=10.1007%2f978-981-16-7924-7_90&partnerID=40&md5=530fdc17df272418e1282e8fb36ce8b4 Recently, the interest among researchers in nanopolymers used in modified binders has increased in order to achieve high performance of the bituminous mixture. This work presents a study on HMA with different nanopolymer proportions and different mix gradation types conducted to evaluate the rheological performance of asphalt binder and HMA mixtures. The design method of the Marshall mix was used to achieve an optimal asphalt binder content with a different proportion of nanopolymer polymer modificers. The resilient modulus test was conducted to measure the stiffness of the HMA mixtures, while the dynamic shear rheometer test with a short-term aging technique was used to evaluate the rutting of the asphalt binder. The regression analysis was used to test the performance of the nanopolymer rheological asphalt binder and HMA asphalt mixture. Empirical and predicted data from experimental research have been used to construct and validate regression models. The rheological asphalt binder has been shown to have a significant effect on the performance of the HMA asphalt mixture. This result has shown that the finding provides guidance for predicting the performance of HMA asphalt mixtures with respect to the performance of the rutting asphalt binder and, as a result, nanopolymer can be used as an asphalt modifier in road construction. © 2022, The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. Springer Science and Business Media Deutschland GmbH 23662557 English Conference paper |
author |
Shaffie E.; Kamil Arshad A.; Ahmad J.; Hashim W.; Putra Jaya R.; Azman Masri K.; Amin Shafii M.; Yacoob H. |
spellingShingle |
Shaffie E.; Kamil Arshad A.; Ahmad J.; Hashim W.; Putra Jaya R.; Azman Masri K.; Amin Shafii M.; Yacoob H. Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
author_facet |
Shaffie E.; Kamil Arshad A.; Ahmad J.; Hashim W.; Putra Jaya R.; Azman Masri K.; Amin Shafii M.; Yacoob H. |
author_sort |
Shaffie E.; Kamil Arshad A.; Ahmad J.; Hashim W.; Putra Jaya R.; Azman Masri K.; Amin Shafii M.; Yacoob H. |
title |
Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
title_short |
Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
title_full |
Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
title_fullStr |
Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
title_full_unstemmed |
Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
title_sort |
Prediction of HMA Mixture Performance from Rheological and Rutting Evaluation of Nanopolymer Asphalt Binder |
publishDate |
2022 |
container_title |
Lecture Notes in Civil Engineering |
container_volume |
215 |
container_issue |
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doi_str_mv |
10.1007/978-981-16-7924-7_90 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85128747219&doi=10.1007%2f978-981-16-7924-7_90&partnerID=40&md5=530fdc17df272418e1282e8fb36ce8b4 |
description |
Recently, the interest among researchers in nanopolymers used in modified binders has increased in order to achieve high performance of the bituminous mixture. This work presents a study on HMA with different nanopolymer proportions and different mix gradation types conducted to evaluate the rheological performance of asphalt binder and HMA mixtures. The design method of the Marshall mix was used to achieve an optimal asphalt binder content with a different proportion of nanopolymer polymer modificers. The resilient modulus test was conducted to measure the stiffness of the HMA mixtures, while the dynamic shear rheometer test with a short-term aging technique was used to evaluate the rutting of the asphalt binder. The regression analysis was used to test the performance of the nanopolymer rheological asphalt binder and HMA asphalt mixture. Empirical and predicted data from experimental research have been used to construct and validate regression models. The rheological asphalt binder has been shown to have a significant effect on the performance of the HMA asphalt mixture. This result has shown that the finding provides guidance for predicting the performance of HMA asphalt mixtures with respect to the performance of the rutting asphalt binder and, as a result, nanopolymer can be used as an asphalt modifier in road construction. © 2022, The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. |
publisher |
Springer Science and Business Media Deutschland GmbH |
issn |
23662557 |
language |
English |
format |
Conference paper |
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record_format |
scopus |
collection |
Scopus |
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1809677892706107392 |