Technical Papers
Jan 30, 2023

Using Artificial Neural Networks to Predict the Cracking Resistance Change Due to Asphalt Binder Content Variation

Publication: Journal of Materials in Civil Engineering
Volume 35, Issue 4

Abstract

This paper presents the results of a comprehensive laboratory testing program that was conducted to evaluate the effect of variations in various asphalt mixture properties on changes in the cracking resistance of asphalt mixtures. To this end, a testing factorial consisting of 13 mixes and three asphalt binder content protocols, that is, optimum asphalt binder content (OAC), OAC+0.3%, and OAC0.3%, were considered. Indirect tension asphalt cracking tests (IDEAL-CT) was conducted on the considered mixtures to examine the interaction effects between mixture characteristics and variations in the binder content on changes in cracking resistance as measured by cracking tolerance index (CTI). Statistical analyses were performed to evaluate the significance of the interaction effects with respect to asphalt mixture type. Regression and artificial neural network models were then developed to predict changes in CTI based on asphalt binder content variation. The results suggested that changes in CTI due to the variation in binder content were significantly influenced by reclaimed asphalt pavement (RAP) content, mixture type, and the type of aggregate used in the production of the asphalt mixture. A good correlation was obtained between mixture characteristics and changes in the CTI values of the asphalt mixtures. The correlation results were further enhanced with the use of artificial neural networks (ANNs).

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Data Availability Statement

All data, models, and code generated or used during the study appear in the published article.

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Go to Journal of Materials in Civil Engineering
Journal of Materials in Civil Engineering
Volume 35Issue 4April 2023

History

Received: Mar 28, 2022
Accepted: Jul 1, 2022
Published online: Jan 30, 2023
Published in print: Apr 1, 2023
Discussion open until: Jun 30, 2023

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Authors

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Syed Faizan Husain [email protected]
Formerly, Graduate Research Assistant, Dept. of Civil and Architectural Engineering and Construction Management, Univ. of Cincinnati, Cincinnati, OH 45221. Email: [email protected]
Professor, Dept. of Civil and Architectural Engineering and Construction Management, Univ. of Cincinnati, Cincinnati, OH 45221 (corresponding author). ORCID: https://orcid.org/0000-0002-5677-1280. Email: [email protected]
Dmitry Manasreh [email protected]
Graduate Research Assistant, Dept. of Civil and Architectural Engineering and Construction Management, Univ. of Cincinnati, Cincinnati, OH 45221. Email: [email protected]
Professor, Dept. of Civil Engineering, Univ. of Akron, Akron, OH 44325. Email: [email protected]
Tanvir Quasem [email protected]
Graduate Research Assistant, Dept. of Civil Engineering, Univ. of Akron, Akron, OH 44325. Email: [email protected]
Mustafa Mansour [email protected]
Graduate Research Assistant, Dept. of Civil Engineering, Univ. of Akron, Akron, OH 44325. Email: [email protected]

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Cited by

  • 2D Aggregate Gradation Conversion Framework Integrated with 3D Random Aggregate Method and Machine-Learning for Asphalt Concrete, Journal of Materials in Civil Engineering, 10.1061/JMCEE7.MTENG-17430, 36, 5, (2024).

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