Deformation and Failure Mechanisms of Cellulose-derived Advanced Structures

dc.contributor.advisorLi, Tengen_US
dc.contributor.authorChen, Qiongyuen_US
dc.contributor.departmentMechanical Engineeringen_US
dc.contributor.publisherDigital Repository at the University of Marylanden_US
dc.contributor.publisherUniversity of Maryland (College Park, Md.)en_US
dc.date.accessioned2025-08-08T11:45:55Z
dc.date.issued2025en_US
dc.description.abstractCellulose, the most abundant natural polymer in the world, has attracted considerable attention recently owing to its superior mechanical properties, biodegradability, and low cost. Various cellulose-based materials have been developed, e.g., cellulose-based films (paper), hydrogels, aerogels, fibers, and composites. These materials feature a broad range of desirable functions such as optical transparency, high strength and toughness, programmable hydrophilicity and hydrophobicity, and electrical/ion/thermal conductivity, with the potential to be used in a wide range of applications such as energy storage, textile engineering, biomedicine, packaging, etc. This research proposal is devoted to advance the understanding of the deformation and failure mechanics of cellulose-derived sustainable materials, specifically, from the aspect of (1) deformation behaviors of cellulose-based functional structure design, including (a) 3D-printed deformable electrodes and separator for Lithium-ion batteries and (b) humidity-responsive, strong and smart cellulosic fiber actuators; (2) enriching the existing parameters to facilitate the mechanistic understanding of cellulose papers; (3) modeling the deformation and failure mechanism of chemically treated wood composite, such as (a) enhanced structural integrity of super wood (b) foldability of moldable wood versus. non-moldable wood (c) multilayered elastic wood for sustainable footwears; (4) failure mechanisms of super wood veneer tubes in the aspects of (a) failure mechanism of the unique petaling behavior of super wood tubes (b) a systematic finite element analysis on the geometrical dependency of failure modes and energy absorption performance of super wood tubes. (c) glue effects on the failure mode and energy absorption performance of super wood tubs under both static and dynamic loading conditions. Hopefully, the mechanistic understandings of cellulose-derived materials in current dissertation will shed light on developing a variety of structural applications for a more sustainable society.en_US
dc.identifierhttps://doi.org/10.13016/hhxt-xcpa
dc.identifier.urihttp://hdl.handle.net/1903/34104
dc.language.isoenen_US
dc.subject.pqcontrolledMechanicsen_US
dc.subject.pqcontrolledMaterials Scienceen_US
dc.subject.pquncontrolledCelluloseen_US
dc.subject.pquncontrolledFinite Element Analysisen_US
dc.subject.pquncontrolledMechanics of Materialsen_US
dc.subject.pquncontrolledSustainabilityen_US
dc.subject.pquncontrolledWooden_US
dc.titleDeformation and Failure Mechanisms of Cellulose-derived Advanced Structuresen_US
dc.typeDissertationen_US

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