Repository logo
Log In(current)
  1. Home
  2. Colleges & Schools
  3. Graduate School
  4. Doctoral Dissertations
  5. Accuracy and Reliability Improvement of Wide-Area Power Grid Monitoring
Details

Accuracy and Reliability Improvement of Wide-Area Power Grid Monitoring

Date Issued
August 1, 2015
Author(s)
Zhan, Lingwei  
Advisor(s)
Yilu Liu
Additional Advisor(s)
Hairong Qi
Wei Gao
Chien-fei Chen
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/24650
Abstract

Phasor Measurement Unit (PMU) is one of the key elements of wide area measurement systems (WAMS) in advanced power system monitoring, protection, and control applications. Frequency Disturbance Recorder (FDR) developed by the Power IT Laboratory at the University of Tennessee, is a low-cost and single-phase PMU used at the distribution level.


Traditional PMUs use GPS as the only timing source. They will stop working when GPS signal is lost or unstable. Two alternative GPS independent timing sources including eLoran and Chip Scale Atomic Clock were tested for long-term reliability and short-term accuracy to study the application of the two methods in synchrophasor measurement area.

Phasor measurement accuracy is of great concern for power grid researchers and operators. The hardware and software measurement algorithm of the FDRs were analyzed to study the error sources. The hardware of the FDRs was upgraded based on the analysis to improve measurement accuracy. Further, two different phasor measurement algorithms that are based on discrete Fourier Transform (DFT) and signal model will be introduced, respectively. The aim is to improve the phasor measurement accuracy under different steady-state and dynamic conditions as well as in a real power grid environment at the distribution level. Moreover, to better evaluate the measurement accuracy of PMUs, a PMU testing system was built. A calibration method that can compensate the time delay of the PMU testing system was proposed, and the testing results were compared to NIST to verify the accuracy of the PMU testing system after calibration.

At last, a concept of “Universal Grid Analyzer” (UGA) was proposed and a prototype was built. The UGA has improved phasor measurement accuracy thanks to the proposed adaptive high-accuracy synchronous sampling algorithm and high-precision ADC. Meanwhile, the UGA can also function as a synchronized power quality analyzer that has harmonics measurement, voltage sag and swell detection functions. Moreover, the noise analysis function of the UGA that can help the analysis of phasor measurement accuracy in a real power grid environment was developed.

Subjects

Phasor Measurement Un...

phasor measurement

frequency measurement...

synchrophasor measure...

Frequency Disturbance...

Universal Grid Analyz...

Disciplines
Electrical and Computer Engineering
Degree
Doctor of Philosophy
Major
Electrical Engineering
Embargo Date
August 15, 2016
File(s)
Thumbnail Image
Name

Dissertation_Lingwei_Zhan.pdf

Size

3.85 MB

Format

Adobe PDF

Checksum (MD5)

966eb79cae275bef4d1249818a7e9ee2

Thumbnail Image
Name

Dissertation_draft_Lingwei_Zhan_v11.docx

Size

8.58 MB

Format

Microsoft Word XML

Checksum (MD5)

261fdfcc03ede603b81b2d97bb795f1e


University Libraries

1015 Volunteer Boulevard
Knoxville, TN 37996
865-974-4351

Map & Directions
Donate to the Libraries
  • About
  • John C. Hodges Society
  • Speaking Volumes magazine
  • Outreach
  • Directory
  • Employment
  • Policies
  • Library Intranet
University of Tennessee power T logo

The University of Tennessee, Knoxville
Knoxville, Tennessee 37996
865-974-1000

Events
A-Z
Apply
Privacy
Map
Directory
Give to UT
Accessibility

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science