4.7 Article

Durability improvement of poroelastic road surface with treated rubber: Molecular dynamics simulation and experimental observations

期刊

JOURNAL OF CLEANER PRODUCTION
卷 369, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.jclepro.2022.133334

关键词

Durability; Bonding; Oxygen -containing groups; Rubber; Polyurethane; Molecular dynamics

资金

  1. National Key R&D Project of China [2021YFB2600602, 2021YFB2600600]
  2. Science and Technology Plan of the Department of Housing and Urban-Rural Development of Anhui Province
  3. People?s Republic of China [2020-YF05]

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This study aimed to improve the durability of poroelastic road surface (PERS) by introducing oxygen-containing groups on the surface of rubber particles. Molecular simulation showed that the introduction of hydroxyl and carbonyl groups improved the bonding performance between rubber and polyurethane. Experimental tests revealed that treating rubber with NaOH solution enhanced the durability of PERS.
Poroelastic road surface (PERS) is usually composed of rubber particles, aggregates, and polyurethane. However, the poor bonding strength between rubber granules and polyurethane affects PERS' durability. This study aimed to improve the durability of PERS with treated rubber using molecular simulation and experimental tests. The cohesive energy density (CED), interaction energy (IE) and shear bonding capacities between two kinds of rubber granules and one-component polyurethane were simulated using molecular dynamics (MD). The hydrophilicity test and Fourier transform infrared (FTIR) spectroscopy test were utilized to demonstrate the formation of oxygen-containing groups on rubber surfaces. The indirect tension (IDT) test and Cantabro test were employed to evaluate the durability of PERS mixtures with treated rubber. The MD simulation results showed that the oxygen -containing groups, including the hydroxyl group (-OH) and the carbonyl group (C=O), could improve surface polarity of natural rubber (NR) and styrene-butadiene rubber (SBR) and thereby enhance rubber-polyurethane bonding performance. In particular, hydroxyl groups improved the bonding energy of NR-polyurethane by 59% while the carbonyl groups enhanced the bonding performance of SBR-polyurethane by 20%. The hydro-philicity of the treated rubber granules was effectively improved since new carbonyl groups were introduced on rubber surface. The treatment of rubber with NaOH solution improved the durability of PERS specimens by 8.4% in terms of tensile strength ratio (TSR) and 64.7% in terms of Cantabro abrasion loss. These findings prove the feasibility of designing durable PERS with good functional performance.

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