Startseite Performance analysis of SRFT based D-STATCOM for power quality improvement in distribution system under different loading conditions
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Performance analysis of SRFT based D-STATCOM for power quality improvement in distribution system under different loading conditions

  • Vijay Sirohi , Tejinder Singh Saggu ORCID logo EMAIL logo und Mandeep Singh
Veröffentlicht/Copyright: 17. Oktober 2023

Abstract

Presently the term “Power Quality” is gaining more and more attention due to different kinds of non-linearities induced by various converters used in the industries. Power quality is all about assessing and maintaining optimal quality of power during various stages of the power system ranging from generation to distribution. This research intends to provide a better understanding to various researchers about the applications of the Distribution Static Compensator (D-STATCOM) in mitigating various power quality concerns typically focused on harmonics elimination and voltage profile improvement. D-STATCOM is designed and installed in the distribution network to maintain reactive power demand, harmonic mitigation, and power factor correction. A Synchronous Reference Frame Theory (SRFT) based control technique is adopted to extract reference current. The behavior of the system with and without D-STATCOM is analyzed in detail for various loads. As a result, this study presents various ideas, adjustments, and compensating methods for several loading conditions. Finally, it is found that the current THD has been considerably improved under various loading conditions.


Corresponding author: Tejinder Singh Saggu, Punjab Engineering College, Chandigarh, India, E-mail:

  1. Research ethics: Not applicable.

  2. Author contributions: The authors have accepted responsibility for the entire content of this manuscript and approved its submission.

  3. Competing interests: The authors state no conflict of interest.

  4. Research funding: None declared.

  5. Data availability: Not applicable.

References

1. Ashitha, T, Shahin, A, Cheriyan, EP, Ramchand, R. FPGA controlled D-STATCOM under distorted grid condition. In: IEEE region 10 annual international conference, proceedings/TENCON 2017-Decem. Hong Kong: IEEE Region 10; 2017:2594–9 pp.10.1109/TENCON.2017.8228299Suche in Google Scholar

2. Bajaj, M, Pushkarna, M, Rana, AS, Khan, MT. An improved SRF based control algorithm for D-STATCOM under abnormal source voltage. In: 12th IEEE international conference electronics, energy, environment, communication, computer, control: (E3-C3), INDICON 2015. New Delhi: IEEE; 2016:1–6 pp.10.1109/INDICON.2015.7443406Suche in Google Scholar

3. Karare, S, Harne, VM. Modelling and simulation of improved operation of D-STATCOM in distribution system for power quality improvement using MATLAB Simulink tool. In: Proceedings of the international conference on electronics, communication and aerospace technology, ICECA 2017, 2017-January. Coimbatore: IEEE; 2017:346–50 pp.10.1109/ICECA.2017.8212831Suche in Google Scholar

4. Singh, B, Jayaprakash, P, Kothari, DP, Chandra, A, Haddad, KA. Comprehensive study of D-STATCOM configurations. IEEE Trans Ind Inf 2014;10:854–70. https://doi.org/10.1109/TII.2014.2308437.Suche in Google Scholar

5. Chakraborty, S, Das, S, Sidhu, T, Siva, AK. Smart meters for enhancing protection and monitoring functions in emerging distribution systems. Int J Electr Power Energy Syst 2021;127:106626. https://doi.org/10.1016/j.ijepes.2020.106626.Suche in Google Scholar

6. Gupta, G, Fritz, W, Kahn, MTE. A comprehensive review of D-STATCOM: control and compensation strategies. Int J Appl Eng Res 2017;12:387–93.Suche in Google Scholar

7. Saggu, TS, Singh, L, Gill, B. Harmonics mitigation in a steel industry using 11-level cascaded multilevel inverter-based D-STATCOM. Can J Electr Comput Eng 2017;40:110–5. https://doi.org/10.1109/CJECE.2017.2681686.Suche in Google Scholar

8. Bhukya, J, Naidu, TA, Vuddanti, S, Konstantinou, C. Coordinated control and parameters optimization for PSS, POD and SVC to enhance the transient stability with the integration of DFIG based wind power systems. Int J Emerg Elec Power Syst 2022;23:359–79. https://doi.org/10.1515/ijeeps-2021-0098.Suche in Google Scholar

9. Salmeron, P, Litrán, SP. Improvement of the electric power quality using series active and shunt passive filters. IEEE Trans Power Deliv 2010;25:1058–67. https://doi.org/10.1109/TPWRD.2009.2034902.Suche in Google Scholar

10. Saggu, TS, Singh, L. Comparison of D-STATCOM topologies for harmonic mitigation in induction. Int J Eng Sci Technol 2017;3:106–19.Suche in Google Scholar

11. Manpreet, TSS. Performance analysis of D-STATCOM and UPQC in distribution system. In: International conference on computing, networking & renewable energy. Jalandhar: CNRE; 2021:234–40 pp.Suche in Google Scholar

12. Sen, P, Panda, KP. Mitigation using new PWM based D-STATCOM. In: International conference on intelligent computing and control systems. Madurai: IEEE; 2017:350–5 pp.10.1109/ICCONS.2017.8250741Suche in Google Scholar

13. Kumar, P, Kumar, N, Akella, AK. A simulation-based case study for control of D-STATCOM. ISA Trans 2014;53:767–75. https://doi.org/10.1016/j.isatra.2013.11.008.Suche in Google Scholar PubMed

14. Yahiya, MAA, Uzair, MAR. Performance analysis of DVR, D-STATCOM and UPQC for improving the power quality with various control strategies. In: 2016 – biennial international conference on power and energy systems: towards sustainable energy, PESTSE. Bengalure: IEEE; 2016:1–4 pp.10.1109/PESTSE.2016.7516483Suche in Google Scholar

15. Damodhar, SS. Novel models of power system components for implicit solution of the adjusted power flow problem. Int J Emerg Elec Power Syst 2022;23:409–21. https://doi.org/10.1515/ijeeps-2021-0123.Suche in Google Scholar

16. Mahela, OP, Shaik, AG. Power quality improvement in distribution network using D-STATCOM with battery energy storage system. Int J Electr Power Energy Syst 2016;83:229–40. https://doi.org/10.1016/j.ijepes.2016.04.011.Suche in Google Scholar

17. Singh, B, Kandpal, M, Hussain, I. Control of grid tied smart PV-D-STATCOM system using an adaptive technique. IEEE Trans Smart Grid 2018;9:3986–93. https://doi.org/10.1109/tsg.2016.2645600.Suche in Google Scholar

18. Ghatak, SR, Sannigrahi, S, Acharjee, P. Multi-objective approach for strategic incorporation of solar energy source, battery storage system, and D-STATCOM in a smart grid environment. IEEE Syst J 2019;13:3038–49. https://doi.org/10.1109/jsyst.2018.2875177.Suche in Google Scholar

19. Awasth, VM, Huchche, VA. Reactive power compensation using D-STATCOM. In: 2016 international conference on energy efficient technologies for sustainability, ICEETS 2016. Nagercoil: IEEE; 2016:583–5 pp.10.1109/ICEETS.2016.7583821Suche in Google Scholar

20. Mishra, MK, Karthikeyan, K, Vincent, G, Sasitharan, S. A DSP-based integrated hardware set-up for a D-STATCOM: design, development, and implementation issues. IETE J Res 2010;56:11–21. https://doi.org/10.4103/0377-2063.61254.Suche in Google Scholar

21. Karthik, T, Prathyusha, M, Thirumalaivasan, R, Janaki, M. Power quality improvement using D-STATCOM. In: 2019 innovations in power and advanced computing technologies, i-PACT 2019. Vellore: IEEE; 2019:1–7 pp.10.1109/i-PACT44901.2019.8960234Suche in Google Scholar

22. Giroux, P, Sybille, G, Le-Huy, H. Modeling and simulation of a distribution STATCOM using Simulink’s power system blockset. IECON Proc (Ind Electron Conf) 2001;2:990–4. https://doi.org/10.1109/iecon.2001.975905.Suche in Google Scholar

23. Kota, VR, Vinnakoti, S. Synchronous reference frame based control of MLI-STATCOM in power distribution network. In: 2016 IEEE power and energy conference at Illinois, PECI 2016. Boston: IEEE; 2016.10.1109/PECI.2016.7459247Suche in Google Scholar

24. Mahela, OP, Shaik, AG. A review of distribution static compensator. Renew Sustain Energy Rev 2015;50:531–46. https://doi.org/10.1016/j.rser.2015.05.018.Suche in Google Scholar

25. Patil, DR, Madhale, KK. Design and simulation studies of D-STATCOM for voltage sag, swell mitigation. Int J Power Syst Oper Energy Manag 2013;2:169–75. https://doi.org/10.47893/ijpsoem.2013.1083.Suche in Google Scholar

26. Neha Suresh, MP, Manoj Kumar, MV. Comparison of control algorithms of D-STATCOM for power quality improvement. In: International conference on power electronics and renewable energy applications, PEREA. Kannur: IEEE; 2020:1–6 pp.10.1109/PEREA51218.2020.9339807Suche in Google Scholar

27. Abdelsalam, AA, Ghoneim, SSM, Salem, AA. An efficient compensation of modified D-STATCOM for improving microgrid operation. Alex Eng J 2021;61:5501–16. https://doi.org/10.1016/j.aej.2021.10.061.Suche in Google Scholar

28. Singh, B, Jayaprakash, P, Kothari, DP. Three single-phase voltage source converter based three-phase four wire D-STATCOM. In: 2009 international conference on power systems, ICPS ’09. Kharagpur: IEEE; 2009:25–9 pp.10.1109/ICPWS.2009.5442701Suche in Google Scholar

29. Kumar, P. Simulation of custom power electronic device D-STATCOM – a case study. In: India international conference on power electronics, IICPE 2010. New Delhi: IEEE; 2011:8–11 pp.10.1109/IICPE.2011.5728057Suche in Google Scholar

30. Pinto, SJ, Panda, G, Peesapati, R. An implementation of hybrid control strategy for distributed generation system interface using Xilinx system generator. IEEE Trans Ind Inf 2017;13:2735–45. https://doi.org/10.1109/TII.2017.2723434.Suche in Google Scholar

31. Coteli, R, Deniz, E, Dandil, B, Tuncer, S, Ata, F. Phase angle control of three level inverter based D-STATCOM using neuro-fuzzy controller. Adv Electr Comput Eng 2012;12:77–84. https://doi.org/10.4316/AECE.2012.01013.Suche in Google Scholar

32. Mahela, OP, Khan, B, Alhelou, HH, Tanwar, S, Padmanaban, S. Harmonic mitigation and power quality improvement in utility grid with solar energy penetration using distribution static compensator. IET Power Electron 2021;14:912–22. https://doi.org/10.1049/pel2.12074.Suche in Google Scholar

33. Qashou, A, Yousef, S, Smadi, AA, AlOmari, AA. Distribution system power quality compensation using an HSeAPF based on SRF and SMC features. Int J Syst Assur Eng Manag 2021;12:976–89. https://doi.org/10.1007/s13198-021-01185-w.Suche in Google Scholar

34. Sharma, R, Singh, A, Jha, AN. Performance evaluation of tuned PI controller for power quality enhancement for linear and non-linear loads. In: International conference on recent advances and innovations in engineering, ICRAIE 2014. Jaipur: IEEE; 2014:1–6 pp.10.1109/ICRAIE.2014.6909134Suche in Google Scholar

35. Singh, B, Jayaprakash, P, Kothari, DD. A T-connected transformer and three-leg VSC based D-STATCOM for power quality improvement. IEEE Trans Power Electron 2008;23:2710–8. https://doi.org/10.1109/TPEL.2008.2004273.Suche in Google Scholar

36. Varshney, G, Chauhan, DS, Dave, MP. Performance analysis of photovoltaic based D-STATCOM using SRF and IRP control theory1. In: Proceedings on 2015 1st international conference on next generation computing technologies, NGCT 2015, no. September. Dehradun: IEEE; 2016:779–83 pp.10.1109/NGCT.2015.7375226Suche in Google Scholar

37. Prasad, M, Akella, AK. Comparison of D-STATCOM performance for voltage sag alleviation. Indones J Electr Eng Comput Sci 2016;4:305–16. https://doi.org/10.11591/ijeecs.v4.i2.pp305-316.Suche in Google Scholar

Received: 2023-03-28
Accepted: 2023-09-08
Published Online: 2023-10-17

© 2023 Walter de Gruyter GmbH, Berlin/Boston

Heruntergeladen am 29.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/ijeeps-2023-0107/html
Button zum nach oben scrollen