Performance-based design for binary-blended filler application in dense-graded cold mix asphalt

dc.contributor.authorUsman, KR
dc.contributor.authorHainin, MR
dc.contributor.authorSatar, MKIM
dc.contributor.authorWarid, MNM
dc.contributor.authorAdamu, IA
dc.contributor.authorRadwan, AAM
dc.contributor.editorPasindu, HR
dc.contributor.editorBandara, S
dc.contributor.editorMampearachchi, WK
dc.contributor.editorFwa, TF
dc.date.accessioned2023-01-20T04:07:56Z
dc.date.available2023-01-20T04:07:56Z
dc.date.issued2021
dc.description.abstractThe quest to developing a universally acceptable mix design procedure for cold mix asphalt (CMA) is in the spotlight of continuous research. Moreover, the performance improvement ofCMAcoupled with sustainable construction drives had witnessed the inclusion of industrial by-products and biomass waste alike in CMA. Nonetheless, various transportation departments in different countries tailor CMA’s design to suit their geographic regions’ peculiar challenges.Despite such efforts, mix designs need to produce laboratory results replicative of service conditions capable of ameliorating the high void content, weak early strength, and slow rate of strength gain of CMAs. This study proposed a performance-based mix design based on the combined result of indirect tensile stiffness modulus (ITSM) and Cantabro loss tests compared to the standardMarshallmix design. Themixtures contain binary blending of 1–4% palm oil fuel ash (POFA) with 3–6% granite filler by total aggregate weight in a fine dense-graded CMA using a polymer-modified cationic quick set (CQS-1h) and an unmodified rapid set (RS-1K) emulsified asphalt. A gradation with a nominal maximum aggregate size (NMAS) of 4.75 mm (FGCMA-4.75 mm) was employed. In addition to Cantabro and ITSM, the designed mix was tested for Indirect Tensile Strength (ITS), and modified Lottman’s test. Results revealed a significant correlation between the usual Marshall design with the proposed design based on the established optimum emulsion contents (OEC). An optimal 3% POFA yielded moistureresistant mixtures with enhanced mechanical and Marshall volumetric properties in void reduction, increased stability, and adequate early strength.en_US
dc.identifier.citation*****en_US
dc.identifier.conferenceRoad and Airfield Pavement Technologyen_US
dc.identifier.doihttps://doi.org/10.1007/978-3-030-87379-0_40en_US
dc.identifier.emailmrosli@utm.my; roslihainin@ump.edu.myen_US
dc.identifier.facultyEngineeringen_US
dc.identifier.pgnospp. 529-545en_US
dc.identifier.proceedingProceedings of 12th International Conference on Road and Airfield Pavement Technology, 2021en_US
dc.identifier.urihttp://dl.lib.uom.lk/handle/123/20209
dc.identifier.year2021en_US
dc.language.isoenen_US
dc.publisherSpringeren_US
dc.subjectCold mix asphalten_US
dc.subjectFine dense-graded cold mix asphalten_US
dc.subjectPalm oil fuel ashen_US
dc.subjectCQS-1hen_US
dc.subjectRS-1Ken_US
dc.titlePerformance-based design for binary-blended filler application in dense-graded cold mix asphalten_US
dc.typeConference-Full-texten_US

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