Cosine Windows in Interpolated DFT-based Method for an Accurate High-Frequency Distortion Assessment in Power Systems

被引:0
作者
Bracale A. [1 ]
Caramia P. [1 ]
Carpinelli G. [2 ]
De Falco P. [1 ]
Verde P. [3 ]
机构
[1] Department of Engineering, University of Naples Parthenope, Centro Direzionale Is. C4, Naples
[2] Electrical Power Systems, Naples
[3] Dep. of Electrical and Information Engineering Engineering & DIAEE, University of Cassino and Lazio Meridionale & La Sapienza Università di Roma, Via di Biasio n. 43, Cassino
来源
Renewable Energy and Power Quality Journal | 2023年 / 21卷
关键词
DFT; High-Frequency Waveform Distortion Assessment; Power Quality; Supraharmonics;
D O I
10.24084/repqj21.312
中图分类号
学科分类号
摘要
The transformation of electrical networks in the context of the new smart grid paradigm unavoidably involves new challenges regarding Power Quality (PQ) disturbances not only for customers but also for all the other involved stakeholders. Among PQ disturbances, waveform distortions have recently gained growing interest due to the massive presence of new technologies in distributed energy resources, in modern loads and in advanced smart metering systems. The presence of these devices determines arduous electromagnetic compatibility problems since the current and voltage waveform distortions in smart grids are characterized by spectral components above the traditional 2 kHz frequency limit, in a range extended up to 150 kHz. In this paper, an interpolated DFT-based (IDFT) method, recently proposed in the relevant literature in the field of signal processing, is properly extended for an accurate and fast assessment of power system waveform distortions in the frequency range from 2 to 150 kHz. Since DFT-based methods can suffer well-known spectral leakage problems, in this paper the IDFT is applied using cosine windows that minimize interference conditions among spectral components and maximise the estimation accuracy of the spectral component amplitude, phase angle and frequency. An optimal number of cosine window terms is also searched to improve the spectral analysis of high-frequency power system waveforms. Numerical applications on synthetic test signals and measured waveforms are carried out to quantify the accuracy and computational efforts of the proposed approach and to select the cosine window terms that better optimize the waveform distortion assessment. © 2023, European Association for the Development of Renewable Energy, Environment and Power Quality (EA4EPQ). All rights reserved.
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页码:323 / 328
页数:5
相关论文
共 22 条
[1]  
Shabanzadeh M., Moghaddam M. P., What is the Smart Grid? Definitions, Perspectives, and Ultimate Goals, 28th Power System Conference, (2013)
[2]  
CIGRE/CIRED JWG C., Power quality and EMC issues with future electricity networks, Proc. CIGRE, pp. 1-5, (2018)
[3]  
Bollen M. H. J., Et al., Power quality concerns in implementing smart distribution-grid applications, IEEE Trans. Smart Grid, 8, 1, pp. 391-399, (2017)
[4]  
De Santis M., Di Stasio L., Noce C., Verde P., Varilone P., Initial Results of an Extensive, Long-Term Study of the Forecasting of Voltage Sags, Energies, 14, (2021)
[5]  
Mottola F., Proto D., Varilone P., Verde P., Planning of Distributed Energy Storage Systems in μGrids Accounting for Voltage Dips, Energies, 13, (2020)
[6]  
Espin-Delgado A., Ronnberg S., Sudha Letha S., Bollen M., Diagnosis of supraharmonics-related problems based on theeffects on electrical equipment, EPSR journal, 195, (2021)
[7]  
Ronnberg S. K., Et al., On waveform distortion in the frequency range of 2 kHz-150 kHz—Review and research challenges, Electr. Power Syst. Res, 150, pp. 1-10, (2017)
[8]  
IEC Standard 61000-4-7: General Guide on Harmonics and Interharmonics Measurements, for Power Supply Systems and EquipmentConnected Thereto, (2010)
[9]  
IEC Standard 61000-4-30: Testing and Measurement Techniques Power QualityMeasurement Methods, (2015)
[10]  
Specification for Radio Disturbance and Immunity Measuring Apparatus and Methods—Part 1-1: Radio Disturbance and Immunity Measuring Apparatus—Measuring Apparatus, (2019)