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Impact of Rejuvenator-Modified Mastic on Asphalt Mixture Stiffness: Meso-Scale Discrete Element Method Approach

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dc.contributor.author Câmara, G. pt_BR
dc.contributor.author Azevedo, N. pt_BR
dc.contributor.author Micaelo, R. pt_BR
dc.date.accessioned 2024-01-03T16:23:15Z pt_BR
dc.date.accessioned 2024-03-05T15:30:17Z
dc.date.available 2024-01-03T16:23:15Z pt_BR
dc.date.available 2024-03-05T15:30:17Z
dc.date.issued 2023-12 pt_BR
dc.identifier.uri https://repositorio.lnec.pt/jspui/handle/123456789/1017032
dc.description.abstract Encapsulated rejuvenators embedded in asphalt mixtures are a promising technology to extend the service life of asphalt pavements. However, their effects on the asphalt mixture’s perfor- mance still need to be properly understood. A recently developed three-dimensional discrete element method framework enables the evaluation of non-homogeneous distributions of the rejuvenator, closely resembling real conditions. This includes different scenarios involving capsule content and release efficiency. The presented numerical results show that the rejuvenator-to-mastic ratio and the number of rejuvenator-modified contacts influence the stiffness properties of asphalt mixtures. In cases where a homogeneous rejuvenator distribution is assumed, the three-dimensional DEM model predicts a significant reduction in the asphalt mixture’s stiffness that compromises the pavement’s performance. Simulations show that the diffusion effect needs to be considered for predicting the post-healed behavior of asphalt mixtures. For cases considering more suitable modified mastic amounts (less than 1.20 wt%), the effect on the asphalt mixture’s stiffness modulus is less pronounced, and the phase angle is not significantly affected. Additionally, the presented simulations suggest that the capsule content can be increased up to 0.75 wt%, and capsules with a release rate higher than 48% can be used without compromising the rheological performance of asphalt mixtures, possibly improving their self-healing properties. These numerical insights should be considered in future designs to achieve optimal post-healed behavior. pt_BR
dc.language.iso eng pt_BR
dc.publisher MDPI pt_BR
dc.rights openAccess pt_BR
dc.subject discrete element modeling pt_BR
dc.subject self-healing pt_BR
dc.subject asphalt mixture pt_BR
dc.subject rejuvenator-modified mastic pt_BR
dc.subject encapsulated rejuvenator pt_BR
dc.subject capsules pt_BR
dc.title Impact of Rejuvenator-Modified Mastic on Asphalt Mixture Stiffness: Meso-Scale Discrete Element Method Approach pt_BR
dc.type article pt_BR
dc.description.pages 22p. pt_BR
dc.description.volume 13 pt_BR
dc.description.sector DBB/NMMR pt_BR
dc.description.magazine Buildings pt_BR
dc.contributor.peer-reviewed SIM pt_BR
dc.contributor.academicresearchers SIM pt_BR
dc.contributor.arquivo SIM pt_BR


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