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Efficient controller of DSTATCOM based on combination of Adaline and SOGI-FLL for power quality improvement

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Abstract

This work proposed a new control algorithm based on a combination of Second order generalized integrator-frequency locked loop (SOGI-FLL) and Adaptive linear neuron (Adaline) based least mean square (LMS) for the three-phase four-leg Distribution static compensator (DSTATCOM). SOGI-FLL play a vital role for grid synchronization, and Adaline LMS based filter used for extraction of the reference current. Adaline (LMS) controller is a fast adaptive filter. This work consists of two segments; First, synchronization of the frequency and phase of the power inverter with the grid through the SOGI-FLL and second, the extraction of reference current for controlling the inverter through the Adaline LMS. Mathematical modeling of both controllers is also elaborated in this work. For the purpose of DC and AC voltage control, Genetic algorithm-based approach has been selected with tuning of proportional integral controller gains. The grid consists of three phase supply with different loads such as static load, dynamic load, unbalanced linear and non-linear load. The DSTATCOM has been fixed at the point of common coupling of the grid to resolve different power quality concerns such as excess harmonics, prominent reactive power, phase unbalanced, deterioration of power factor etc. The complete DSTATCOM system along with the grid has been modeled and executed in MATLAB/Simulink background.

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References

  • Akagi H, Watanabe EH, Aredes M (2007) Instantaneous power theory and applications to power conditioning. Wiley, Hoboken

    Book  Google Scholar 

  • Bak-Jensen B (2020) Distribution power systems and power quality. MDPI, Switzerland

    Google Scholar 

  • Bhattacharya A, Chakraborty C (2011) A shunt active power filter with enhanced performance using ANN-based predictive and adaptive controllers. IEEE Trans Ind Electron 58(2):421–428

    Article  Google Scholar 

  • Cespedes M, Sun J (2014) Impedance modelling and analysis of grid- connected voltage-source converters. IEEE Trans Power Electron 29(3):1254–1261

    Article  Google Scholar 

  • Chittora P, Singh A, Singh M (2018) Simple and efficient control of DSTATCOM in three phase four wire polluted grid system using MCCF-SOGI based controller. IET Gener Transm Distrib 12(5):1213–1222

    Article  Google Scholar 

  • Cirrincione M, Pucci M, Vitale G et al (2009) Current harmonic compensation by a single-phase shunt active power filter controlled by adaptive neural filtering. IEEE Trans Ind Electron 56(8):3128–3143

    Article  Google Scholar 

  • Dash PK, Panda SK, Mishra B (1997) Fast estimation of voltage and current phasors in power networks using an adaptive neural network. IEEE Trans Power Sys 12(4):1494–1499

    Article  Google Scholar 

  • Fuchs EF, Mausoum MAS (2008) Power quality in power systems and electrical machines. Elsevier, London

    Google Scholar 

  • Golestan S, Guerrero JM et al (2018) Modeling, tuning, and performance comparison of advanced second-order generalized integrator-based FLLs. IEEE Trans Power Electron 33(12):10229–10239

    Article  Google Scholar 

  • Hao Y, Wang X, Blaabjerg F et al (2017) Impedance analysis of SOGI-FLL-based grid synchronization. IEEE Trans Power Electron 32(10):7409–7413

    Article  Google Scholar 

  • IEEE Recommended Practice and Requirements for Harmonic Control in Electric Power Systems—Redline (2014) in IEEE Std 519–2014 (Revision of IEEE Std 519–1992)—Redline, pp 1–213

  • Pomilio JA, Deckmann S (2007) Characterization and compensation of harmonics and reactive power of residential and commercial loads. IEEE Trans Power Deliv 22(2):1049–1055

    Article  Google Scholar 

  • Qasim M, Kanjiya P, Khadkikar V (2014) Optimal current harmonic extractor based on unified ADALINEs for shunt active power filters. IEEE Trans Power Electron 29(12):6383–6393

    Article  Google Scholar 

  • Sanjeevikumar P, Sharmeela C, Bo H-N, Sivaraman P (2021) Power quality in modern power systems. Academic Press, London

    Google Scholar 

  • Singh B, Chandra A, Al-Haddad K (2015) Power quality: problems and mitigation techniques. Wiley, Chichester

    Book  Google Scholar 

  • Srinivas BK, Geddada N, Mishra MK et al (2011) A DSTATCOM topology with reduced DC-link voltage rating for load compensation with non-stiff source. IEEE Trans Power Electron 27(3):1201–1211

    Google Scholar 

  • Srinivas VL, Kumar S, Singh B et al (2017) Partially decoupled adaptive filter based multifunctional three-phase GPV system. IEEE Trans Sustain Energy 9(1):311–320

    Article  Google Scholar 

  • Wen B, Dong D, Boroyevich D (2016) Impedance-based analysis of grid-synchronization stability for three-phase paralleled converters. IEEE Trans on Power Electron 31(1):26–38

    Article  Google Scholar 

  • Yuan X, Merk W, Stemmler H et al (2002) Stationary-frame generalized integrators for current control of active power filters with zero steady-state error for current harmonics of concern under unbalanced and distorted operating conditions. IEEE Trans Ind Appl 38(2):523–532

    Article  Google Scholar 

  • Zainuri M, Radzi MA, Soh A et al (2015) DC-linkcapacitor voltage control for single-phase shunt active power filter with step size error cancellation in self-charging algorithm. IET Power Electron 9(2):323–335

    Article  Google Scholar 

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Correspondence to Pradeep Kumar.

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Kumar, A., Kumar, P. Efficient controller of DSTATCOM based on combination of Adaline and SOGI-FLL for power quality improvement. Int J Syst Assur Eng Manag 14, 1543–1566 (2023). https://doi.org/10.1007/s13198-023-01965-6

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  • DOI: https://doi.org/10.1007/s13198-023-01965-6

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