In-Situ Distributed Sensing for High Temperature Superconductor Magnets based on Rayleigh-backscattering Interrogated Optical Fibers.

dc.contributor.advisorJustin Schwartz, Chair
dc.contributor.advisorClaude Reynolds Jr, Member
dc.contributor.advisorJagdish Narayan, Member
dc.contributor.advisorMohamed Bourham, Member
dc.contributor.authorScurti, Federico
dc.date.accepted2019-07-15
dc.date.accessioned2020-07-15T12:31:01Z
dc.date.available2020-07-15T12:31:01Z
dc.date.defense2019-06-12
dc.date.embargo2020-07-15
dc.date.issued2019-06-12
dc.date.released2020-07-15
dc.date.reviewed2019-07-03
dc.date.submitted2019-07-03
dc.degree.disciplineMaterial Science & Engineering
dc.degree.leveldissertation
dc.degree.nameDoctor of Philosophy
dc.descriptionNorth Carolina State University Theses Materials Science and Engineering.
dc.formatPh.D. North Carolina State University, 2019.
dc.identifier.otherdeg18031
dc.identifier.urihttps://www.lib.ncsu.edu/resolver/1840.20/38143
dc.titleIn-Situ Distributed Sensing for High Temperature Superconductor Magnets based on Rayleigh-backscattering Interrogated Optical Fibers.
dcterms.extent1 online resource (xv, 190 pages) : illustrations (some color)

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