Non-contact measurement method for voltage phasor

The synchronous phasor measurement technology offers data for dynamic security monitoring in power systems. The non-contact voltage sensing technology has the advantages of safety, convenience and low cost, which is helpful for massive distribution of measurement devices. The defect of the existing...

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Main Authors: LI Jiaxian, LIU Hao, BI Tianshu
Format: Article
Language:zho
Published: Editorial Department of Electric Power Engineering Technology 2023-05-01
Series:电力工程技术
Subjects:
Online Access:https://www.epet-info.com/dlgcjsen/article/abstract/221007397
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author LI Jiaxian
LIU Hao
BI Tianshu
author_facet LI Jiaxian
LIU Hao
BI Tianshu
author_sort LI Jiaxian
collection DOAJ
description The synchronous phasor measurement technology offers data for dynamic security monitoring in power systems. The non-contact voltage sensing technology has the advantages of safety, convenience and low cost, which is helpful for massive distribution of measurement devices. The defect of the existing non-contact voltage measurement technology is that the voltage probe may cause voltage distortion, and it is difficult to figure out the primary voltagephasor. In order to solve the problem of voltage distortion, the distortion law of voltage is revealed by analyzing the non-contact probe's equivalent circuit and transmission characteristic, and a phasor measurement algorithm for each in-band signal is proposed. Signal pre-processing is used to filter the out-of-band signals and noise first; The matrix pencil method is used to calculate the in-band signal's frequencies, which is used to build signal model, then the in-band signal phasors are figured out by fitting in time-domain; Lastly, the secondary phasors are restored to obtain the primary in-band signal phasors and synthetical phasor. The simulation results show that the proposed method can figure out the primary voltage phasor by using the sample of the probe output voltage. Experiment data show that the amplitude measurement error is less than 4.5%, the phase error is less than 1°, the frequency error is less than 0.04 Hz, and the frequency change rate error is less than 4 Hz/s.
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spelling doaj.art-3e9eb75021ae4ab1b68c765bf280af822023-05-26T00:26:42ZzhoEditorial Department of Electric Power Engineering Technology电力工程技术2096-32032023-05-0142316817810.12158/j.2096-3203.2023.03.019221007397Non-contact measurement method for voltage phasorLI Jiaxian0LIU Hao1BI Tianshu2State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources (North China Electric Power University), Beijing 102206, ChinaState Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources (North China Electric Power University), Beijing 102206, ChinaState Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources (North China Electric Power University), Beijing 102206, ChinaThe synchronous phasor measurement technology offers data for dynamic security monitoring in power systems. The non-contact voltage sensing technology has the advantages of safety, convenience and low cost, which is helpful for massive distribution of measurement devices. The defect of the existing non-contact voltage measurement technology is that the voltage probe may cause voltage distortion, and it is difficult to figure out the primary voltagephasor. In order to solve the problem of voltage distortion, the distortion law of voltage is revealed by analyzing the non-contact probe's equivalent circuit and transmission characteristic, and a phasor measurement algorithm for each in-band signal is proposed. Signal pre-processing is used to filter the out-of-band signals and noise first; The matrix pencil method is used to calculate the in-band signal's frequencies, which is used to build signal model, then the in-band signal phasors are figured out by fitting in time-domain; Lastly, the secondary phasors are restored to obtain the primary in-band signal phasors and synthetical phasor. The simulation results show that the proposed method can figure out the primary voltage phasor by using the sample of the probe output voltage. Experiment data show that the amplitude measurement error is less than 4.5%, the phase error is less than 1°, the frequency error is less than 0.04 Hz, and the frequency change rate error is less than 4 Hz/s.https://www.epet-info.com/dlgcjsen/article/abstract/221007397synchronous phasor measurement algorithmnon-contact voltage measurementcapacitive coupling voltage probemeasurement band extractionmatrix pencil methodleast square method
spellingShingle LI Jiaxian
LIU Hao
BI Tianshu
Non-contact measurement method for voltage phasor
电力工程技术
synchronous phasor measurement algorithm
non-contact voltage measurement
capacitive coupling voltage probe
measurement band extraction
matrix pencil method
least square method
title Non-contact measurement method for voltage phasor
title_full Non-contact measurement method for voltage phasor
title_fullStr Non-contact measurement method for voltage phasor
title_full_unstemmed Non-contact measurement method for voltage phasor
title_short Non-contact measurement method for voltage phasor
title_sort non contact measurement method for voltage phasor
topic synchronous phasor measurement algorithm
non-contact voltage measurement
capacitive coupling voltage probe
measurement band extraction
matrix pencil method
least square method
url https://www.epet-info.com/dlgcjsen/article/abstract/221007397
work_keys_str_mv AT lijiaxian noncontactmeasurementmethodforvoltagephasor
AT liuhao noncontactmeasurementmethodforvoltagephasor
AT bitianshu noncontactmeasurementmethodforvoltagephasor