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<title>Viscoelasticity modelling of asphalt mastics under permanent deformation through the use of fractional calculus</title>
<creator>Lagos-Varas, M.</creator>
<creator>Castro-Fresno, D.</creator>
<creator>Muñoz-Cáceres, O.</creator>
<creator>Andrés-Valeri, V.C.</creator>
<creator>Raposeiras, Aitor</creator>
<creator>Movilla-Quesada, Diana</creator>
<creator>Rodríguez Esteban, María Ascensión</creator>
<subject>Rheology</subject>
<subject>Permanent deformation</subject>
<subject>Asphalt mastic</subject>
<subject>Filler/bitumen</subject>
<subject>Creep-recovery</subject>
<subject>Hydrated lime</subject>
<subject>Fly ash</subject>
<description>Fuente: Construction and Building Materials</description>
<description>[EN] asphalt bitumens. Asphalt mastics are viscoelastic composite materials widely used in the construction of&#xd;
pavement layers. The mechanical properties and the influence of the fillers on the filler/bitumen (f/b) matrix is&#xd;
one of the main areas of current research. In particular, the elastic determination of fillers for mechanical testing&#xd;
in asphalt mastic is relevant to understand permanent deformation caused by temperature variations caused by&#xd;
seasonal changes and vehicular traffic loads. In this sense, this research proposes a new methodology for&#xd;
rheological characterization of the elastic properties of the filler ξ2 and elastic-viscous properties of the asphalt&#xd;
bitumen, ξ1 and η, respectively, complementing the existing designs of asphalt mixture. The proposed methodology&#xd;
allows for identification of the influence of non-conventional fillers in the behavior of the asphalt mastic&#xd;
for the different recovery cycles of the Multiple Stress Creep Recovery (MSCR) and determination of new&#xd;
rheological parameters for the compression of the recovery phenomena and the elastic capacity of the type of&#xd;
filler and weight of the base bitumen. The results obtained show a greater adjustment to the experimental curves&#xd;
in determining the elastic modulus in each cycle for the hydrated lime and fly ash fillers with different filler/&#xd;
bitumen ratios. In particular, the proposed model for bituminous mastics achieves a strong fit with the experimental&#xd;
curves by empirically reducing the quadratic error (R2 = 0.99) and managing to differentiate the elastic&#xd;
capacity ξ2 of each filler and its effect with increasing concentration. For example, it establishes that the Hydrated&#xd;
lime filler (HL) acquires an average Young’s modulus of 0.005 MPa, being 99.31% more elastic than Fly&#xd;
ash filler (FA) for a load of 3.2 kPa at a 1.25f/b ratio. In addition, the new model can be used to modify bitumen&#xd;
properties to design optimized and stronger asphalt mixtures.</description>
<date>2024-02-01</date>
<date>2024-02-01</date>
<date>2022-04-25</date>
<date>2099-09-09</date>
<type>info:eu-repo/semantics/article</type>
<identifier>Lagos-Varas, M., Movilla-Quesada, D., Raposeiras, A. C., Castro-Fresno, D., Muñoz-Cáceres, O., Andrés-Valeri, V. C., &amp; Rodríguez-Esteban, M. A. (2022). Viscoelasticity modelling of asphalt mastics under permanent deformation through the use of fractional calculus. Construction and Building Materials, 329, 127102. doi:10.1016/j.conbuildmat.2022.127102</identifier>
<identifier>0950-0618</identifier>
<identifier>http://hdl.handle.net/10366/155181</identifier>
<identifier>10.1016/j.conbuildmat.2022.127102</identifier>
<language>eng</language>
<relation>https://doi.org/10.1016/j.conbuildmat.2022.127102</relation>
<relation>Proyecto FONDECYT Regular 1201029</relation>
<rights>http://creativecommons.org/licenses/by-nc-nd/4.0/</rights>
<rights>info:eu-repo/semantics/embargoedAccess</rights>
<rights>Attribution-NonCommercial-NoDerivatives 4.0 Internacional</rights>
</thesis></metadata></record></GetRecord></OAI-PMH>