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dc.contributor.advisorHarimkar, Sandip P.
dc.contributor.authorBalaraman Yadhukulakrishnan, Govindaraajan
dc.date.accessioned2014-04-17T19:51:54Z
dc.date.available2014-04-17T19:51:54Z
dc.date.issued2012-07-01
dc.identifier.urihttps://hdl.handle.net/11244/9889
dc.description.abstractSpace vehicles re-entering the earth's atmosphere experience very high temperatures due to aerodynamic heating. Ultra-high temperature ceramics (UHTC) with melting point higher than 3200C are promising materials for thermal protection systems of such space vehicles re-entering the earth's atmosphere. Among several UHTC systems ZrB2 based ceramic composites are particularly important for thermal protection systems due to their better mechanical and thermoelectric properties and high oxidation resistance. In this study spark plasma sintering of SiC, carbon nanotubes (CNT) and graphene nano platelets (GNP) reinforced ZrB2 ultra-high temperature ceramic matrix composites is reported. Systematic investigations on the effect of reinforcement type (SiC, CNTs and GNP) and content (10-40 vol.% SiC, 2-6 vol.% CNTs and 2-6 vol.% GNP) on densification behavior, microstructure development, and mechanical properties (microhardness, bi-axial flexural strength, and indentation fracture toughness) are reported. With the similar SPS parameters near-full densification (>99% relative density) was achieved with 10-40 vol.% SiC, 4-6 vol.% CNT reinforced composites. Highly dense composites were obtained in 4-6 vol.% GNP reinforced composites. The SiC, CNT and GNP reinforcement improved the indentation fracture toughness of the composites through a range of toughening mechanisms, including particle shearing, crack deflection at the particle-matrix interface, and grain pull-outs for ZrB2-SiC composites, CNT pull-outs and crack deflection in ZrB2-CNT composites and crack deflection, crack bridging and GNP sheet pull-out for ZrB2-GNP composites.
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dc.languageen_US
dc.publisherOklahoma State University
dc.rightsCopyright is held by the author who has granted the Oklahoma State University Library the non-exclusive right to share this material in its institutional repository. Contact Digital Library Services at lib-dls@okstate.edu or 405-744-9161 for the permission policy on the use, reproduction or distribution of this material.
dc.titleSpark Plasma Sintering of Silicon Carbide, Multi-walled Carbon Nanotube and Graphene Reinforced Zirconium Diboride Ceramic Composite
dc.typetext
dc.contributor.committeeMemberKalkan, Kaan A.
dc.contributor.committeeMemberHatami-Marbini, Hamed
osu.filenameBalaramanYadhukulakrishnan_okstate_0664M_12288.pdf
osu.collegeEngineering, Architecture, and Technology
osu.accesstypeOpen Access
dc.description.departmentMechanical & Aerospace Engineering
dc.type.genreThesis
dc.subject.keywordscarbon nanotubes
dc.subject.keywordsgraphene
dc.subject.keywordsraman spectroscopy
dc.subject.keywordsspark plasma sintering
dc.subject.keywordsultra high temperature ceramics
dc.subject.keywordszirconium diboride


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