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dc.contributor.authorO'Kelly, Brendan
dc.date.accessioned2024-01-15T13:34:10Z
dc.date.available2024-01-15T13:34:10Z
dc.date.issued2023
dc.date.submitted2023en
dc.identifier.citationSoltani A., Nguyen D.T.D., O'Kelly B.C. and Taheri A., Predicting the Compactability of Artificially Cemented Fine‑Grained Soils Blended with Waste‑Tire‑Derived Aggregates, Transportation Infrastructure Geotechnology, 10, 3, 2023, 365 - 390en
dc.identifier.otherY
dc.descriptionPUBLISHEDen
dc.description.abstractThis study investigates the possibility of extending the specific gravity ratio (SGR) modeling framework, originally developed for predicting the compaction properties of unamended fine-grained soils (with no binder) blended with tire- derived aggregates (TDAs), to artificially cemented soil–TDA blends. This was achieved by performing comprehensive statistical analyses on a large and diverse database of 87 fine-grained soil–binder–TDA compaction tests, covering a wide range of soil plasticity and including a variety of chemical binders (cement, lime, fly ash, slag, and liquid polymers) and sand-sized (0.075–4.75 mm) TDA prod- ucts. The optimum water content (OWC) and maximum dry unit weight (MDD) for any fine-grained soil–binder–TDA blend (constant binder type and content) can be expressed as functions of the OWC and MDD measured for the soil– binder mixture (with no TDA), along with the soil–binder (SB) to soil–binder– TDA (SBT) SGR, as wSBT opt = wSB opt (SGR)𝛽M and 𝛾SBT dmax = 𝛾SB dmax (SGR)𝛽D , respectively. It was demonstrated that reliable predictions (across different fine-grained soils, binders, TDA particle sizes/shapes, and compaction energy levels) can be achieved by adopting the same unique reduction rate parameters of βM = − 0.967 and βD = − 0.509 used for non-cemented soil–TDA mixtures. Attempts were also made to identify causal links between these reduction rate parameters and basic soil properties. It was shown that βD can be expressed as a linear–log function of soil activity. The 95% lower and upper (water content) agreement limits between the predicted and measured OWC values were obtained as − 1.70% and + 2.01%, both of which can be deemed acceptable for practical applications (e.g., preliminary soil–binder–TDA mixture-design evaluations). For the MDD predictions employing soil activity, these agreement limits were calculated as − 0.50 and + 0.54 kN/m 3 ; these small MDD limits are also deemed acceptable for practi- cal applications.en
dc.format.extent365en
dc.format.extent390en
dc.language.isoenen
dc.relation.ispartofseriesTransportation Infrastructure Geotechnology;
dc.relation.ispartofseries10;
dc.relation.ispartofseries3;
dc.rightsYen
dc.subjectSoil activityen
dc.subjectSpecific gravity ratioen
dc.subjectMaximum dry unit weighten
dc.subjectOptimum water contenten
dc.subjectCompactionen
dc.subjectArtificially cemented fine-grained soilen
dc.subjectTire-derived aggregateen
dc.titlePredicting the Compactability of Artificially Cemented Fine‑Grained Soils Blended with Waste‑Tire‑Derived Aggregatesen
dc.typeJournal Articleen
dc.type.supercollectionscholarly_publicationsen
dc.type.supercollectionrefereed_publicationsen
dc.identifier.peoplefinderurlhttp://people.tcd.ie/bokelly
dc.identifier.rssinternalid237659
dc.identifier.doihttps://doi.org/10.1007/s40515-021-00214-2
dc.rights.ecaccessrightsopenAccess
dc.subject.TCDThemeSmart & Sustainable Planeten
dc.subject.TCDTagCEMENTen
dc.subject.TCDTagCOMPACTIONen
dc.subject.TCDTagGEOTECHNICAL ENGINEERINGen
dc.subject.TCDTagGeotechnicsen
dc.subject.TCDTagMODELINGen
dc.subject.TCDTagMODELLINGen
dc.subject.TCDTagSOIL MODIFICATIONen
dc.subject.TCDTagSoil Mechanicsen
dc.subject.TCDTagSoil Mechanics & Foundationsen
dc.subject.TCDTagSoil activityen
dc.subject.TCDTagWaste tiresen
dc.subject.TCDTaggeotechnicalen
dc.subject.TCDTagspecific gravityen
dc.subject.TCDTagwaste tyresen
dc.identifier.orcid_id0000-0002-1343-4428
dc.status.accessibleNen
dc.identifier.urihttp://hdl.handle.net/2262/104383


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