Evaluation of Epoxy Asphalt Binders for Open-Graded Friction Course (OGFC) Application

2021 ◽  
pp. 787-794
Author(s):  
Raquel Moraes ◽  
Fan Yin
2019 ◽  
Vol 198 ◽  
pp. 1-9 ◽  
Author(s):  
Peiliang Cong ◽  
Weihua Luo ◽  
Peijun Xu ◽  
Yihan Zhang

Author(s):  
Panos Apostolidis ◽  
Xueyan Liu ◽  
Martin van de Ven ◽  
Sandra Erkens ◽  
Tom Scarpas

Epoxy modification of asphalt binders has been recognized as a very effective technology to alter the chemistry of asphaltic materials in such a way that long-lasting pavement structures can be designed. However, the phenomena that are involved to build up the physico-mechanical properties of epoxy asphalt systems are still unknown. The focus of this paper is on understanding the link between chemistry and the mechanical properties of epoxy asphalt binders during the thermo-irreversible process of chemical hardening. For this purpose, a constitutive model for predicting the evolution of cure-induced stresses in epoxy asphalt binders is proposed, and an experimental program was developed to determine the model parameters. The cure dependency of physico-mechanical parameters of modified binder was obtained and imported into the model to simulate the build-up of material properties during (non-)isothermal hardening of epoxy asphalt binder. The model is implemented in a commercially finite element tool by coupling the chemical, thermal, and mechanical phenomena with multi-physics strategies, and the results are analyzed to identify the influence of different heating conditions on the crosslinking density and subsequently on stress build-up. It was found that the amount of stress build-up during curing was strongly dependent on the heating conditions, and a higher rate of stress build-up was observed at higher applied temperatures. In other words, the processing conditions during in-plant material production or in-field manufacturing of structures made by epoxy asphalt systems affect the material hardening and subsequently the desired functionalities of pavement structures.


2018 ◽  
Vol 186 ◽  
pp. 863-870 ◽  
Author(s):  
Ru Chen ◽  
Jie Gong ◽  
Yongjia Jiang ◽  
Qingjun Wang ◽  
Zhonghua Xi ◽  
...  

2020 ◽  
Vol 249 ◽  
pp. 118800 ◽  
Author(s):  
Panos Apostolidis ◽  
Xueyan Liu ◽  
Sandra Erkens ◽  
Athanasios Scarpas

Author(s):  
Panos Apostolidis ◽  
Xueyan Liu ◽  
Sandra Erkens ◽  
Tom Scarpas

Miscibility, and lack of it, is decisive for durable polymer-modified asphalt binders and reflects the long-term performance of asphalt materials in terms of fatigue and thermal cracking. In this work, the glass transition behavior of epoxy asphalt will be assessed extensively after different oxidative aging time periods using differential scanning calorimetry. The composition dependence of glass transition in epoxy asphalt binders over oxidative aging is evaluated by emphasizing the deviation of glass transition temperature ( Tg) with the change in sign and magnitude. An entropy-based analysis of glass transitions in epoxy asphalt is discussed as well. The blends formulated by epoxy and asphalt binder have shown an increase of the Tg deviation from the ideal mixing rule over oxidative aging. Two different shapes of the composition dependence of the Tg values are observed between the blends with and without fillers but showing both distinct positive deviations from the case of mixing ideal materials. The Tg and heat capacity ( Cp) parameters determined in relation to the epoxy asphalt composition provide insights into the effect of limestone fillers on the oxidation-induced embrittlement of epoxy asphalt materials. The results could help select the epoxy proportion in asphalt to develop super-durable and long-lasting pavement materials.


2018 ◽  
Vol 170 ◽  
pp. 582-590 ◽  
Author(s):  
Qiang Wu ◽  
Chong Wang ◽  
Rui Liang ◽  
Yongchang Liu ◽  
Jixiang Cheng ◽  
...  

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