LAPSE:2018.1011
Published Article
LAPSE:2018.1011
Extracting Steady State Components from Synchrophasor Data Using Kalman Filters
Farhan Mahmood, Hossein Hooshyar, Luigi Vanfretti
November 27, 2018
Data from phasor measurement units (PMUs) may be exploited to provide steady state information to the applications which require it. As PMU measurements may contain errors and missing data, the paper presents the application of a Kalman Filter technique for real-time data processing. PMU data captures the power system’s response at different time-scales, which are generated by different types of power system events; the presented Kalman Filter methods have been applied to extract the steady state components of PMU measurements that can be fed to steady state applications. Two KF-based methods have been proposed, i.e., a windowing-based KF method and “the modified KF”. Both methods are capable of reducing noise, compensating for missing data and filtering outliers from input PMU signals. A comparison of proposed methods has been carried out using the PMU data generated from a hardware-in-the-loop (HIL) experimental setup. In addition, a performance analysis of the proposed methods is performed using an evaluation metric.
Keywords
data processing, kalman filters, phasor measurement units, real-time simulation
Suggested Citation
Mahmood F, Hooshyar H, Vanfretti L. Extracting Steady State Components from Synchrophasor Data Using Kalman Filters. (2018). LAPSE:2018.1011
Author Affiliations
Mahmood F: Department of Electric Power & Energy Systems, The Royal Institute of Technology, Stockholm 10044, Sweden
Hooshyar H: Department of Electric Power & Energy Systems, The Royal Institute of Technology, Stockholm 10044, Sweden
Vanfretti L: Department of Electric Power & Energy Systems, The Royal Institute of Technology, Stockholm 10044, Sweden; Statnett Statsforetak, Oslo 0423, Norway
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Journal Name
Energies
Volume
9
Issue
5
Article Number
E315
Year
2016
Publication Date
2016-04-25
Published Version
ISSN
1996-1073
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Original Submission
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PII: en9050315, Publication Type: Journal Article
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LAPSE:2018.1011
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doi:10.3390/en9050315
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Nov 27, 2018
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Nov 27, 2018
 
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Calvin Tsay
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