60
Views
0
CrossRef citations to date
0
Altmetric
Power Electronics

MMC-based PV-Fed STATCOM with Hybrid GA-RBFNN for PQ Enhancement

, &

References

  • J. J. Jung, J. H. Lee, S. K. Sul, G. T. Son, and Y. H. Chung, “DC capacitor voltage balancing control for delta-connected cascaded H-bridge STATCOM considering unbalanced grid and load conditions,” IEEE Trans. Power Electron., Vol. 33, no. 6, pp. 4726–35, 2018.
  • W. Rohouma, M. Metry, R. S. Balog, A. A. Peerzada, and M. M. Begovic, “Adaptive model predictive controller to reduce switching losses for a capacitor-less D-STATCOM,” IEEE Open J Power Electron, Vol. 1, pp. 300–11, 2020.
  • A. H. Elmetwaly, A. A. Eldesouky, and A. A. Sallam, “An adaptive D-FACTS for power quality enhancement in an isolated microgrid,” IEEE. Access., Vol. 8, pp. 57923–42, 2020.
  • A. A. Z. Diab, T. Ebraheem, R. Aljendy, H. M. Sultan, and Z. M. Ali, “Optimal design and control of MMC STATCOM for improving power quality indicators,” Appl. Sci., Vol. 10, no. 7, pp. 2490, 2020.
  • F. R. Islam, A. Lallu, K. A. Mamun, K. Prakash, and N. K. Roy, “Power quality improvement of distribution network using bess and capacitor bank,” J. Modern Power Syst. Clean Energy, Vol. 9, no. 3, pp. 625–32, 2020.
  • D. Q. Hung, and Y. Mishra, “Voltage fluctuation mitigation: fast allocation and daily local control of DSTATCOMs to increase solar energy harvest,” IET Renew. Power Gener., Vol. 13, no. 14, pp. 2558–68, 2019.
  • B. Ahmadi, and R. Çağlar, “Determining the Pareto front of distributed generator and static VAR compensator units placement in distribution networks,” Int. J. Elect. Comp. Eng. (IJECE), Vol. 12, no. 4, pp. 3440–53, 2022.
  • X. Wang, L. Xu, P. Fu, Y. Wu, H. Mao, and J. Li, “Operation analysis and improvement of impulse current test on high-power DC test platform With SVC system,” IEEE Trans. Plasma Sci., Vol. 46, no. 5, pp. 1658–64, 2018.
  • G. S. Chawda, A. G. Shaik, O. P. Mahela, S. Padmanaban, and J. B. H. Nielsen, “Comprehensive review of distributed FACTS control algorithms for power quality enhancement in utility grid with renewable energy penetration,” IEEE. Access., Vol. 8, pp. 107614–34, 2020.
  • M. Moghbel, M. A. S. Masoum, and A. F. S. Deilami, “Optimal sizing, siting and operation of custom power devices With STATCOM and APLC functions for real-time reactive power and network voltage quality control of smart grid,” IEEE Trans. Smart Grid, Vol. 9, no. 6, pp. 5564–75, 2018.
  • H. Liao, S. Abdelrahman, and J. V. Milanović, “Zonal mitigation of power quality using FACTS devices for provision of differentiated quality of electricity supply in networks with renewable generation,” IEEE Trans. Power Delivery, Vol. 32, no. 4, pp. 1975–85, 2017.
  • W. U. K. Tareen, et al., “Mitigation of power quality issues due to high penetration of renewable energy sources in electric grid systems using three-phase APF/STATCOM technologies: A review,” Energies, Vol. 11, no. 6, pp. 1491, 2018.
  • S. D. Swain, P. K. Ray, and K. B. Mohanty, “Improvement of power quality using a robust hybrid series active power filter,” IEEE Trans. Power Electron., Vol. 32, pp. 3490–8, 2017.
  • S. Echalih, A. Abouloifa, I. Lachkar, J. M. Guerrero, Z. Hekss, and F. Giri, “Hybrid automaton-fuzzy control of single phase dual buck half bridge shunt active power filter for shoot through elimination and power quality improvement,” Int. J. Electr. Power Energy Syst., Vol. 131, pp. 106986, 2021.
  • C. Gong, W.-K. Sou, and C.-S. Lam, “H∞ optimal control design of static var compensator coupling hybrid active power filter based on harmonic state-space modeling,” CPSS Trans. Power Electron. Appl., Vol. 6, no. 3, pp. 227–34, 2021.
  • L. Feola, R. Langella, I. Papič, and A. Testa, “Selective interharmonic compensation to improve statcom performance for light flicker mitigation,” IEEE Trans. Power Delivery, Vol. 33, no. 5, pp. 2442–51, 2018.
  • L. N. Popavath, and P. Kaliannan, “Photovoltaic-STATCOM with low voltage ride through strategy and power quality enhancement in a grid integrated wind-PV system,” Electronics. (Basel), Vol. 7, no. 4, pp. 51, 2018.
  • V. F. Pires, A. Cordeiro, D. Foito, and J. Fernando Silva, “A multilevel converter topology for a STATCOM system based on four-leg two-level inverters and cascaded Scott transformers,” IEEE Trans. Power Delivery, Vol. 37, no. 3, pp. 1391–402, 2021.
  • K. M. Nathgosavi, and P. M. Joshi, “Possibility study of PV-STATCOM with CHB multilevel inverter: A review,” Inf. Commun. Technol. Intell. Syst. Proceed. ICTIS 2020, Vol. 1, pp. 579–589, 2021.
  • A. Gupta, “Power quality evaluation of photovoltaic grid interfaced cascaded H-bridge nine-level multilevel inverter systems using D-STATCOM and UPQC,” Energy, Vol. 238, pp. 121707, 2022.
  • R. Arulmurugan, and A. Chandramouli, “Modeling of PV powered seven-level inverter for power quality improvement,” In Smart Intell. Comput. Appl., Vol. 105, pp. 113–21, 2019.
  • A. Kaymanesh, A. Chandra, and K. Al-Haddad, “Model predictive control of MPUC7-based STATCOM using autotuned weighting factors,” IEEE Trans. Ind. Electron., Vol. 69, no. 3, pp. 2447–58, 2021.
  • K. Venkatesh, and P. Raviteja, “Power quality improvement using modular multilevel converter applying three winding Transformer," International Journal of Innovative Research in Advanced Engineering (IJIRAE), Vol. 4, no. 8, pp. 1–9, 2017.
  • E. Kontos, G. Tsolaridis, R. Teodorescu, and P. Bauer, “High order voltage and current harmonic mitigation using the modular multilevel converter STATCOM,” IEEE. Access., Vol. 5, pp. 16684–92, 2017.
  • X. He, J. Peng, P. Han, Z. Liu, S. Gao, and P. Wang, “A novel advanced traction power supply system based on modular multilevel converter,” IEEE. Access., Vol. 7, pp. 165018–165028, 2019.
  • M. Eskandari, and A. V. Savkin, “On the impact of fault ride-through on transient stability of autonomous microgrids: Nonlinear analysis and solution,” IEEE Trans. Smart Grid, Vol. 12, no. 2, pp. 999–1010, 2020.
  • M. I. Hossain, and M. A. Abido, “Positive-negative sequence current controller for LVRT improvement of wind farms integrated MMC-HVDC network,” IEEE. Access., Vol. 8, pp. 193314–39, 2020.
  • T. Thentral, R. Jegatheesan, and C. Subramani, “New PQ theory for power quality improvement using modular multilevel converter based UPFC system,” J. Intell. Fuzzy Syst. Preprint., Vol. 40, pp. 1–12, 2021.
  • E. Ramakrishna, “Adaptive RNN with CSOA controlled based MMC-DSTATCOM for PQ enhancement in distribution system,” Turkish J. Comp. Mathema Educ. (TURCOMAT), Vol. 12, no. 2, pp. 876–88, 2021.
  • N. A. Rajan, K. D. Shrikant, B. Dhanalakshmi, and N. Rajasekar, “Solar PV array reconfiguration using the concept of Standard deviation and Genetic Algorithm,” Energy Procedia, Vol. 117, pp. 1062–9, 2017.
  • H. R. Baghaee, M. Mirsalim, G. B. Gharehpetian, and H. A. Talebi, “Application of RBF neural networks and unscented transformation in probabilistic power-flow of microgrids including correlated wind/PV units and plug-in hybrid electric vehicles,” Simul. Model. Pract. Theory., Vol. 72, pp. 51–68, 2017.
  • N. Ramaprabha, J. Gnanavadivel, N. S. Kumar, and S. J. Christa, “Power quality improvement in single phase AC to DC zeta converter,” Fourth Int. Conf. Sustain. Energy Intell. Syst., 533–537, 2013.
  • S. Singh, B. Singh, G. Bhuvaneswari, and V. Bist, “Power factor corrected zeta converter based improved power quality switched mode power supply,” IEEE Trans. Ind. Electron., Vol. 62, no. 9, pp. 5422–5433, 2015.
  • R. Kushwaha, and B. Singh, “A modified luo converter-based electric vehicle battery charger With power quality improvement,” IEEE Trans. Transp. Electrification, Vol. 5, no. 4, pp. 1087–96, 2019.
  • Z. Chen, Q. Zhou, and J. Xu, “Coupled-inductor boost integrated flyback converter with high-voltage gain and ripple-free input current,” IET Power Electron., Vol. 8, no. 2, pp. 213–20, 2015.
  • N. Molavi, E. Adib, and H. Farzanehfard, “Soft-switched non-isolated high step-up DC–DC converter with reduced voltage stress,” IET Power Electron., Vol. 9, no. 8, pp. 1711–18, 2016.
  • P. Upadhyay, R. Kumar, and S. Sathyan, “Coupled-inductor-based high-gain converter utilising magnetising inductance to achieve soft-switching with low voltage stress on devices,” IET Power Electron., Vol. 13, no. 3, pp. 576–91, 2020.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.