Immitance based stability assessment for multi paralleled 3-ø pv inverters connected to grid

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R. S. Ravi Sankar
S. V. Jayaram Kumar

Abstract

The main objective of this work is to analyze and investigation on Immitance Based Stability Assessment for Multi paralleled 3-Ø PV Inverters connected to Grid is checked by using the Impedance based Stability Criterion (IBSC), The causes for Harmonically stabilized/destabilize the Multi paralleled PV inverter Connected to the grid by varying grid impedance is Analysed by the impedance-based stability criterion.Here Two case studies are Considered with the different grid Inductances to demonstrate the overall system is stable/unstable. The Third case study is projects the overall stability of the System with the constant grid impedance and variable Load Impedance/ Admittance. The Overall System is stable up to grid Inductance 5 mH even though there is change in Load Admittance The stability of the system depending on the grid impedance and not depending on the Load Admittance. The Harmonic content in the grid current of the stable system is in the acceptable limit. It is verified in the Time domain Simulation is provided in MATLAB- Simulink>sup<TM>/sup<.

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How to Cite
Ravi Sankar, R. S., & Jayaram Kumar, S. V. (2017). Immitance based stability assessment for multi paralleled 3-ø pv inverters connected to grid. Power Research - A Journal of CPRI, 355–364. Retrieved from https://node6473.myfcloud.com/~geosocin/CPRI/index.php/pr/article/view/125

References

  1. X.Wang,F.Blaabjerg,and .Wu,“Modeling and analysis of harmonic stability in an Ac power-electronics-based power system,” IEEETrans.Power Electron., Vol.8993, No.12, pp.1–1,Dec.2014.
  2. Zang,F.Blaabjerg,M.Liserre,Z.Chen,J.He,a ndY.Li,“An active damper for stabilizing power-electronics-based AC systems,”IEEE Trans. Power Electron.,Vol.29, No.7, pp.3318–3329, Jul.2014.
  3. J.H.R.Enslinand.J.M.Heskes,“Harmon ic interaction between a large number of distributed power inverters and the distribution network,”IEEE Trans.Power Electron., Vol.19, No.6, pp.1586,1593, Nov.200
  4. [4]“IEEE Recommended Practice and Requirements for Harmonic Control in Electric Power Systems,”IEEE Std 5192014 (Revision of IEEE Std 519-1992). IEEE Standards Association, New York, NY, USA, pp.1–29,2014.
  5. R.D.Middlebrook,“Input filter Considerati -ons in design and application of switching regulators,”in Proc.IEEE IAS Annu. Meeting, pp.366–382,1976.
  6. X.Feng,J.Liu,and F.C.Lee,“Impedance specifications for stable DC distributed power systems,”IEEETrans. Power Electron., Vol.17, No.2, pp.157–162,Mar.2002.
  7. J.Wyatt,L.Chua,J.Gannett,I.Goknar,and D.Green,“Energy concepts in the state-space theory of nonlinear n-ports:PartI-passivity,” IEEE Trans.Circuits Syst., Vol.28, No.1, pp.48–61, Jan.1981.
  8. A. Zahedi, “ A Review of Drivers , Benefits and Challenges in Integrating Renewable Energy Sources Into Electricity grid,”Renewable and Sustainable Energy Reviews, Vol.15, pp.4775-4779, 2011.
  9. M. Castilla, J. Miret, J. Matas, L. G. de Vicu˜na, and J. M. Guerrero, “Control design guidelines for single-phase gridconnected photovoltaic inverters with damped resonant Harmonic compensators,” IEEE Trans. Ind. Electron., Vol. 56, No. 11, pp. 4492–4501, Nov.2009.
  10. S. Eren, M. Pahlevaninezhad, A. Bakhshai, and P. K. Jain, “Composite nonlinear feedback Control and stability analysis of a grid-connected voltage source inverter with LCL filter,” IEEE Trans. Ind. Electron., Vol. 60, No. 11, pp. 5059–5074, Nov. 2013.
  11. G.Petrone,G.Spagnuolo, and M.Vitelli, “A multivariable Perturb and Observe maximum power point tracking technique applied to a single-stage Photovoltaic inverter,‘IEEE Trans. Ind.Electron., Vol.58, No.1,pp.76-84,Jan.2011.
  12. Hasan Komurcugil, Necmi Altin, Member, IEEE, Saban Ozdemir and Ibrahim Sefa, “Lyapunov-Function and Proportional -Resonant Based Control Strategy for Single-Phase Grid-Connected VSI with LCL filter”DOI 10.1109/ TIE.2015.2510984,IEEE Transactions on Industrial Electronics.
  13. Guoqiao Shen, Xuancai Zhu, Jun Zhang, and Dehong Xu, Member, IEEE “A New Feedback Method for PR Current Control of LCL-Filter-Based Grid- Connected Inverter”IEEE.Trans on Industrial Electronics, Vol. 57, No.6, 2010.
  14. R. Teodorescu, F. Blaabjerg, M. Liserre, and P.Loh, “Proportional resonant controllers and filters for grid-connected voltage-source converters,” Proc. Inst. Electr. Eng.—Electr. Power Appl., Vol. 153, No. 5, pp. 750–762, Sep. 2006.
  15. Changwon Yoon, Haofeng Bai, Remus Narcis Beres, Xiongfei Wang, Claus Leth Bak and Frede Blaabjerg, Fellow, IEEE “Harmonic Stability Assessment for Multi paralleled, Grid- Connected Inverters”IEEE Trans on Sustainable Energy, Vol.7, No.4, October 2016.
  16. C. Yoon, X. Wang, F. M. F. Da Silva, C. L. Bak, and F. Blaabjerg, “Harmonic stability assessment for multi-paralleled, gridconnected inverters,” in Proc. 2014 Int. Power Electron. Appl. Conf. Expo., 2014, pp. 1098–1103.
  17. J. Agorreta, M. Borrega, J. Lopez, and L. Marroyo, “Modeling and control of Nparalleled grid-connected inverters with LCL filter coupled due to grid impedance in PV plants,” IEEE Trans. Power Electron., vol. 26, no. 3, pp. 770-785, Mar. 2011.
  18. Jian Sun “Impedance-Based Stability Criterion for Grid-Connected Inverters ”IEEE Trans on Power Electronics, Vol. 26, no. 11, November 2011.
  19. X.Wang, F.Blaabjerg and W.Wu “Modeling and analysis of harmonic stability in an Ac power-electronics-based power system,” IEEE Trans. Power Electron., Vol. 8993, No.12, pp.1–1,Dec.2014.