Strength and Fresh Properties of Cemented Paste Backfill with a Low-Carbon Binder

dc.contributor.authorBathily, Soya
dc.contributor.supervisorFall, Mamadou
dc.date.accessioned2026-08-20T17:46:30Z
dc.date.issued2026-08-20
dc.description.abstractCemented paste backfill (CPB) is widely used in underground mining to provide ground support and enable the safe disposal of tailings. Ordinary Portland cement (OPC), commonly employed as the binder in CPB, is associated with high energy consumption and significant CO₂ emissions, motivating the development of low-carbon alternative binders. Among these, alkali-activated slag (AAS) systems have shown strong potential; however, their application in CPB remains limited, particularly with respect to the coupled evolution of fresh properties, strength development, and hydration mechanisms. This thesis investigates the performance of CPB incorporating ground granulated blast furnace slag activated by a blended sodium carbonate-sodium hydroxide (Na₂CO₃-NaOH) system. An experimental program was conducted to evaluate the influence of activator composition and dosage on both fresh-state behavior and hardened properties. Rheological parameters, setting time, electrical conductivity (EC), volumetric water content (VWC), and matric suction were monitored to characterize early-age structuration and hydration kinetics. Unconfined compressive strength (UCS) was measured at multiple curing ages, and microstructural analyses, including X-ray diffraction were performed to link phase assemblage and pore structure to macroscopic performance. The results demonstrate that the Na₂CO₃-NaOH co-activation system governs CPB behavior through a two-stage hydration process, consisting of an initial ionization regime followed by accelerated gel formation and pore refinement. Fresh-state properties and early-age kinetics were found to be strongly coupled with long-term strength development. Compared to OPC-based CPB, the AAS systems exhibited competitive strength performance while offering significant potential for reducing the carbon footprint of backfill operations. Overall, this research provides an integrated understanding of the mechanisms controlling fresh and hardened behavior of AAS-based CPB and highlights the feasibility of sodium carbonate-sodium hydroxide activated slag as a low-carbon binder for underground mine backfill applications.
dc.identifier.urihttp://hdl.handle.net/10393/51952
dc.identifier.urihttps://doi.org/10.20381/ruor-32163
dc.language.isoen
dc.publisherUniversité d'Ottawa | University of Ottawa
dc.subjectCemented paste backfill
dc.subjectAlkali-activated slag
dc.subjectSodium carbonate
dc.subjectSodium hydroxide
dc.subjectLow-carbon binder
dc.subjectRheology
dc.subjectSetting time
dc.subjectUnconfined compressive strength
dc.subjectHydration kinetics
dc.subjectSustainable mining
dc.titleStrength and Fresh Properties of Cemented Paste Backfill with a Low-Carbon Binder
dc.typeThesisen
thesis.degree.disciplineGénie / Engineering
thesis.degree.levelMasters
thesis.degree.nameMASc
uottawa.departmentGénie civil / Civil Engineering

Fichiers

Trousse originale

Voici les éléments 1 - 1 sur 1
En cours de chargement...
Vignette d'image
Nom:
Bathily_Soya_2026_thesis.pdf
Taille:
2.48 MB
Format:
Adobe Portable Document Format

Trousse de licence

Voici les éléments 1 - 1 sur 1
En cours de chargement...
Vignette d'image
Nom:
license.txt
Taille:
2.51 KB
Format:
Item-specific license agreed upon to submission
Description: