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dc.contributor.advisorOverbye, Thomas
dc.creatorBecejac, Tamara
dc.date.accessioned2019-10-15T15:38:05Z
dc.date.available2019-10-15T15:38:05Z
dc.date.created2019-05
dc.date.issued2019-01-02
dc.date.submittedMay 2019
dc.identifier.urihttps://hdl.handle.net/1969.1/183843
dc.description.abstract. This study presents a comprehensive framework for testing and evaluation of Phasor Measurement Units (PMUs) and synchrophasor systems under normal power system operating conditions, as well as during disturbances such as faults and transients. The proposed framework suggests a performance assessment to be conducted in three steps: (a) type testing: conducted in the synchrophasor calibration laboratory according to accepted industrial standards; (b) application testing: conducted to evaluate the performance of the PMUs under faults, transients, and other disturbances in power systems; (c) end-to-end system testing: conducted to assess the risk and quantify the impact of measurement errors on the applications of interest. The suggested calibration toolset (type testing) enables performance characterization of different design alternatives in a standalone PMU (e.g., length of phasor estimation windows, filtering windows, reporting rates, etc.). In conjunction with the standard performance requirements, this work defines new metrics for PMU performance evaluations under any static and dynamic conditions that may unfold in the grid. The new metrics offer a more realistic understanding of the overall PMU performance and help users choose the appropriate device/settings for the target applications. Furthermore, the proposed probabilistic techniques quantify the PMU accuracy to various test performance thresholds specified by corresponding IEEE standards, rather than having only the pass/fail test outcome, as well as the probability of specific failures to meet the standard requirements defined in terms of the phasor, frequency, and rate of change of frequency accuracy. Application testing analysis encompasses PMU performance evaluation under faults and other prevailing conditions, and offers a realistic assessment of the PMU measurement errors in real-world field scenarios and reveals additional performance characteristics that are crucial for the overall application evaluation. End-to-end system tests quantify the impact of synchrophasor estimation errors and their propagation from the PMU towards the end-use applications and evaluate the associated risk. In this work, extensive experimental results demonstrate the advantages of the proposed framework and its applicability is verified through two synchrophasor applications, namely: Fault Location and Modal Analysis. Finally, a data-driven technique (Principal Component Pursuit) is proposed for the correction and completion of the synchrophasor data blocks, and its application and effectiveness is validated in modal analyzes.en
dc.format.mimetypeapplication/pdf
dc.language.isoen
dc.subjectSynchrophasoren
dc.subjectPMUen
dc.subjectData Qualityen
dc.subjectCalibrationen
dc.subjectTestingen
dc.titleSynchrophasors: Multilevel Assessment and Data Quality Improvement for Enhanced System Reliabilityen
dc.typeThesisen
thesis.degree.departmentElectrical and Computer Engineeringen
thesis.degree.disciplineElectrical Engineeringen
thesis.degree.grantorTexas A & M Universityen
thesis.degree.nameDoctor of Philosophyen
thesis.degree.levelDoctoralen
dc.contributor.committeeMemberDavis, Katherine
dc.contributor.committeeMemberSprintson, Alexander
dc.contributor.committeeMemberMoreno-Centeno, Erick
dc.type.materialtexten
dc.date.updated2019-10-15T15:38:05Z
local.etdauthor.orcid0000-0003-1101-5526


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