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dc.contributor.authorLiu, Qingchen
dc.date.accessioned2026-06-23T04:01:50Z
dc.date.available2026-06-23T04:01:50Z
dc.date.issued2026en_AU
dc.identifier.urihttps://hdl.handle.net/2123/35444
dc.descriptionIncludes publication
dc.description.abstractConcrete is a widely used construction material. In marine environments, its durability and mechanical performance are critical, especially regarding chloride-induced corrosion and structural behaviour under complex stresses. As concrete is a complex composite exhibiting heterogeneity across length scales from the nano- to the macroscale, this work particularly focuses on the mesoscale, as this scale allows the assessment of macroscopic performance while supporting it with microscopic evidence. At the mesoscale, the concrete can be treated as a three-phase composite of cement paste, aggregates, and the interfacial transition zone (ITZ). Aggregates, as the strongest and most impermeable phase, significantly influence performance. However, many studies simplify aggregate shapes, and controlling shape irregularity experimentally is difficult, leaving the effects of realistic aggregate morphology on concrete diffusivity and fracture insufficiently understood. To bridge this gap, this research conducts mesoscale modelling of concrete with realistic aggregate shape to provide new macro- and microscopic insights into the influence of aggregate shape on various single-physical behaviours of concrete. These include ionic diffusion related to chloride-induced corrosion, as well as concrete fracture under triaxial and dynamic loading conditions that represent complex stress environments. The findings provide a new understanding of concrete transport and mechanical behaviours, highlighting the role of aggregate shape irregularity in the diffusivity and strength of concrete.en_AU
dc.language.isoenen_AU
dc.subjectfinite element modellingen_AU
dc.subjectconcrete materialsen_AU
dc.subjectmesoscaleen_AU
dc.subjectdiffusivityen_AU
dc.subjectfractureen_AU
dc.subjectdynamic loadingen_AU
dc.titleMesoscale Modelling of Concrete Materials under Complex Loadingsen_AU
dc.typeThesis
dc.type.thesisDoctor of Philosophyen_AU
dc.rights.otherThe author retains copyright of this thesis. It may only be used for the purposes of research and study. It must not be used for any other purposes and may not be transmitted or shared with others without prior permission.en
usyd.facultySeS faculties schools::Faculty of Engineering::School of Civil Engineeringen_AU
usyd.degreeDoctor of Philosophy Ph.D.en_AU
usyd.awardinginstThe University of Sydneyen_AU
usyd.advisorGan, Yixiang
usyd.include.pubYesen_AU


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