Open Access

A Novel Proportional Multi-Resonant Current Controller Strategy for Reduced DC Voltage fed D-STATCOM with Internal LCL Resonance Damping


Cite

Akhavan, A., Vasquez, J. C. and Guerrero, J. M. (2021). “A Robust Stability Approach for Current-Controlled Grid-Connected Inverters Using PCC Voltage Feedforward Method,” 2021 Zooming Innovation in Consumer Technologies Conference (ZINC), Novi Sad, Serbia, 2021, pp. 246-251. doi: 10.1109/ZINC52049.2021.9499278.Open DOISearch in Google Scholar

Albatran, S., Koran, A., Smadi, I. A. and Ahmad, H. J. (2018). Optimal Design of Passive RC Damped LCL Filter for Grid-Connected Voltage Source Inverters. Electrical Engineering, 100, pp. 2499–2508. doi: 10.1007/s00202-018-0725-5.Open DOISearch in Google Scholar

Almaguer, J., Cárdenas, V., Aganza-Torres, A., González, M. and Alcalá, J. (2019). A Frequency-Based LCL Filter Design and Control Considerations for Three-Phase Converters for Solid-State Transformer Applications. Electrical Engineering, 101, pp. 545–558. doi: 10.1007/s00202-019-00801-0.Open DOISearch in Google Scholar

Barva, A. V. and Joshi, S. (2022). A comprehensive survey on hybrid active power filter topologies & controller and application in Microgrid. In: 2022 IEEE Region 10 Symposium (TENSYMP), 01–03 July 2022. Mumbai, India: IEEE, pp. 1–6. doi: 10.1109/TENSYMP54529.2022.9864377.Open DOISearch in Google Scholar

Behera, R. R., Dash, A. R. and Panda, A. K. (2021). Cascaded Transformer coupled Multi-level inverter based Shunt Active Power Filter. In: 2021 Asian Conference on Innovation in Technology (ASIANCON), 27–29 August 2021. Pune, India: IEEE, pp. 1–6. doi: 10.1109/ASIANCON51346.2021.9544884.Open DOISearch in Google Scholar

Bhattacharya, A., Chakraborty, C. and Bhattacharya, S. (2012). Parallel-Connected Shunt Hybrid Active Power Filters Operating at Different Switching Frequencies for Improved Performance. IEEE Transactions on Industrial Electronics, 59(11), pp. 4007–4019. doi: 10.1109/TIE.2011.2173893.Open DOISearch in Google Scholar

Buyuk, M., Tan, A. and Tumay, M. (2018). Improved Adaptive Notch Filter-Based Active Damping Method for Shunt Active Power Filter with LCL-Filter. Electrical Engineering, 100, pp. 2037–2049. doi: 10.1007/s00202-018-0685-9.Open DOISearch in Google Scholar

Gajjar, N. A. and Zaveri, T. N. (2018). A review of D-STATCOM used in solar photovoltaic system. In: 2018 International Conference and Utility Exhibition on Green Energy for Sustainable Development (ICUE), 24–26 October 2018. Phuket, Thailand: IEEE, pp. 1–7. doi: 10.23919/ICUE-GESD.2018.8635787.Open DOISearch in Google Scholar

Gao, L., Dougal, R. A., Liu, S. and Lotova, A. P. (2009). Parallel-Connected Solar PV System to Address Partial and Rapidly Fluctuating Shadow Conditions. IEEE Transactions on Industrial Electronics, 56(5), p. 2009. doi: 10.1109/TIE.2008.2011296.Open DOISearch in Google Scholar

Gonzalez, J. M., Busada, C. A. and Solsona, J. A. (2021). A Robust Controller for a Grid-Tied Inverter Connected through an LCL Filter. IEEE Journal of Emerging and Selected Topics in Industrial Electronics, 2(1), pp. 82–89. doi: 10.1109/JESTIE.2020.3014834.Open DOISearch in Google Scholar

Hong, Q.-R., Sou, W.-K., Chan, P.-I., Gong, C. and Lam, C.-S. (2022). Review of different current control strategies for LC-coupling hybrid active power filter. In: IECON 2022 – 48th Annual Conference of the IEEE Industrial Electronics Society, 17–20 October 2022. Brussels, Belgium: IEEE, pp. 1–6. doi: 10.1109/IECON49645.2022.9968561.Open DOISearch in Google Scholar

Jeong, H., Lee, K., Choi, S. and Choi, W. (2010). Performance Improvement of LCL-Filter-Based Grid-Connected Inverters using PQR Power Transformation. IEEE Transactions on Power Electronics, 25(5), pp. 1320–1330. doi: 10.1109/TPEL.2009.2037225.Open DOISearch in Google Scholar

Johnsana, J. S. L. and Kumar, R. S. (2022). A new shunt hybrid active power filter configuration research and implementation for enhancement of power quality. In: 2022 International Conference on Computer, Power and Communications (ICCPC), 14–16 December. Chennai, India: IEEE, pp. 547–551. doi: 10.1109/ICCPC55978.2022.10072093.Open DOISearch in Google Scholar

Khenar, M., Taghvaie, A., Adabi, J. and Rezanejad, M. (2018). Multi-Level Inverter with Combined T-Type and Cross-Connected Modules. IET Power Electronics, 11(8), pp. 1407–1415. doi: 10.1049/iet-pel.2017.0378.Open DOISearch in Google Scholar

Kim, S. and Enjeti, P. N. (2002). A New Hybrid Active Power Filter (APF) Topology. IEEE Transactions on Power Electronics, 17(1), pp. 48–54. doi: 10.1109/63.988669.Open DOISearch in Google Scholar

Luo, A., Peng, S., Wu, C., Wu, J. and Shuai, Z. (2012). Power Electronic Hybrid System for Load Balancing Compensation and Frequency-Selective Harmonic Suppression. IEEE Transactions on Industrial Electronics, 59(2), pp. 723–732. doi: 10.1109/TIE.2011.2161066.Open DOISearch in Google Scholar

Luo, A., Zhao, W., Deng, X., Shen, Z. J. and Peng, J. -C. (2009). “Dividing Frequency Control of Hybrid Active Power Filter With Multi-Injection Branches Using Improved ip--iq Algorithm,” in IEEE Transactions on Power Electronics, 24(10), pp. 2396-2405. doi: 10.1109/TPEL.2009.2019822.Open DOISearch in Google Scholar

Mondol, M. H., Biswas, S. P. and Hosain, M. K. (2022). A New Magnetic Linked Three Phase Multi-level Inverter with Reduced Number of Switches and Balanced DC Sources. Electrical Engineering, 104, pp. 449–461. doi: 10.1007/s00202-021-01318-1.Open DOISearch in Google Scholar

Naidu, P. G., Saibabu, C. and Satyanarayana, S. A. (2021). Single Phase Five-Level Inverter with Single and Multiple Switch Fault Tolerance Capabilities. Electrical Engineering, 103(9–3150), p. 2021. doi: 10.1007/s00202-021-01295-5.Open DOISearch in Google Scholar

Nikam, D. S. and Kalkhambkar, V. N. (2018). STATCOM and multilevel VSC topology: A review. In: 2018 International Conference on Current Trends towards Converging Technologies (ICCTCT). Coimbatore, India: IEEE, pp. 1–7. doi: 10.1109/ICCTCT.2018.8551170.Open DOISearch in Google Scholar

Olalla, C., Clement, D., Rodriguez, M. and Maksimovic, D. (2013). Architectures and Control of Submodule Integrated DC-DC Converters for Photovoltaic Applications. IEEE Transactions on Power Electronics, 28(6), pp. 2980–2997. doi: 10.1109/TPEL.2012.2219073.Open DOISearch in Google Scholar

Pan, D., Ruan, X., Bao, C., Li, W. and Wang, X. (2014). Capacitor-Current Feedback Active Damping with Reduced Computation Delay for Improving Robustness of LCL-Type Grid-Connected Inverter. IEEE Transactions on Power Electronics, 29(7), pp. 3414–3427. doi: 10.1109/TPEL.2013.2279206.Open DOISearch in Google Scholar

Park, S., Sung, J. H. and Nam, K. (1999). A new parallel hybrid filter configuration minimizing active filter size. In: 30th Annual IEEE Power Electronics Specialists Conference. Record. (Cat. No.99CH36321), 01–01 July 1999. Charleston, SC, USA: IEEE, Vol. 1, pp. 400–405. doi: 10.1109/PESC.1999.789036.Open DOISearch in Google Scholar

Parker, S. G., McGrath, B. P. and Holmes, D. G. (2014). Regions of Active Damping Control for LCL Filters. IEEE Transactions on Industry Applications, 50(1), pp. 424–432. doi: 10.1109/TIA.2013.2266892.Open DOISearch in Google Scholar

Pea, J. C. U., Sampaio, L. P., de Brito, M. A. G. and Canesin, C. A. (2020). RLC Passive Damped LCL Single-Phase Voltage Source Inverter with Capability to Operate in Grid-Connected and Islanded Modes: Design and Control Strategy. Electrical Engineering, 102, pp. 2509–2519. doi: 10.1007/s00202-020-01045-z.Open DOISearch in Google Scholar

Pea-Alzola, R., Liserre, M., Blaabjerg, F., Sebastin, R., Dannehl, J. and Fuchs, F. W. (2014). Systematic Design of the Lead-Lag Network Method for Active Damping in LCL-Filter Based Three Phase Converters. IEEE Transactions on Industrial Informatics, 10(1), pp. 43–52. doi: 10.1109/TII.2013.2263506.Open DOISearch in Google Scholar

Pilli, N. K., Raghuram, M., Kumar, A. and Singh, S. K. (2019). Single DC-Source Based Seven-Level Boost Inverter for Electric Vehicle Application. IET Power Electronics, 12(13), pp. 3331–3339. doi: 10.1049/iet-pel.2019.0255.Open DOISearch in Google Scholar

Rahmani, S., Hamadi, A., Al-Haddad, K. and Dessaint, L. A. (2014). A Combination of Shunt Hybrid Power Filter and Thyristor-Controlled Reactor for Power Quality. IEEE Transactions on Industrial Electronics, 61(5), pp. 2152–2164. doi: 10.1109/TIE.2013.2272271.Open DOISearch in Google Scholar

Rosso, R., Wang, X., Liserre, M., Lu, X. and Engelken, S. (2021). Grid-Forming Converters: Control Approaches, Grid-Synchronization, and Future Trends—A Review. IEEE Open Journal of Industry Applications, 2, pp. 93–109. doi: 10.1109/OJIA.2021.3074028.Open DOISearch in Google Scholar

Sadanala, C., Pattnaik, S. and Singh, V. P. (2021). A Novel Switched Capacitor-Based Multi-level Inverter with Symmetrical and Asymmetrical Configurations. Electrical Engineering, 103, p. 14611472. doi: 10.1007/s00202-020-01172-7.Open DOISearch in Google Scholar

Satpathy, G., Patnaik, P. and De, D. (2017). Shunt compensation with reduced DC bus voltage using modulation margin controller. In: 2017 14th IEEE India Council International Conference (INDICON), 15–17 December 2017. Roorkee, India: IEEE, pp. 1–6. doi: 10.1109/INDICON.2017.8488036.Open DOISearch in Google Scholar

Srianthumrong, S. and Akagi, H. (2002). A medium-voltage transformerless AC/DC power conversion system consisting of a diode rectifier and a shunt hybrid filter. In: Conference Record of the 2002 IEEE Industry Applications Conference. 37th IAS Annual Meeting (Cat. No.02CH37344), 2002. Pittsburgh, PA, USA, Vol. 1, pp. 78–85. doi: 10.1109/IAS.2002.1044070.Open DOISearch in Google Scholar

Tang, Y., Loh, P. C., Wang, P., Choo, F. H., Gao, F. and Blaabjerg, F. (2012). Generalized Design of High Performance Shunt Active Power Filter with Output LCL Filter. IEEE Transactions on Industrial Electronics, 59(3), pp. 1443–1452. doi: 10.1109/TIE.2011.2167117.Open DOISearch in Google Scholar

Tangtheerajaroonwong, W., Hatada, T. and Akagi, H. (2007). A Transformerless Hybrid Active Filter Using a Three-Level Diode-Clamped PWM Converter. In: 2007 Power Conversion Conference – Nagoya, 02–05 April 2007. Nagoya, Japan: IEEE, pp. 667–673. doi: 10.1109/PCCON.2007.373037.Open DOISearch in Google Scholar

Wang, X., Blaabjerg, F. and Loh, P. C. (2016). Grid-Current-Feedback Active Damping for LCL Resonance in Grid-Connected Voltage-Source Converters. IEEE Transactions on Power Electronics, 31(1), pp. 213–223. doi: 10.1109/TPEL.2015.2411851.Open DOISearch in Google Scholar

Wu, W., He, Y., Tang, T. and Blaabjerg, F. (2013). A New Design Method for the Passive Damped LCL and LLCL Filter-Based Single-Phase Grid-Tied Inverter. IEEE Transactions on Industrial Electronics, 60(10), pp. 4339–4350. doi: 10.1109/TIE.2012.2217725.Open DOISearch in Google Scholar

Yao, W., Yang, Y., Zhang, X., Blaabjerg, F. and Loh, P. C. (2017). Design and Analysis of Robust Active Damping for LCL Filters using Digital Notch Filters. IEEE Transactions on Power Electronics, 32(3), pp. 2360–2375. doi: 10.1109/TPEL.2016.2565598.Open DOISearch in Google Scholar

Yin, J., Duan, S. and Liu, B. (2013). Stability Analysis of Grid-Connected Inverter with LCL Filter Adopting a Digital Single-Loop Controller with Inherent Damping Characteristic. IEEE Transactions on Industrial Informatics, 9(2), pp. 1104–1112. doi: 10.1109/TII.2012.2222424.Open DOISearch in Google Scholar

Zhang, Q., Qian, L., Zhang, C. and Cartes, D. (2006). Study on grid connected inverter used in high power wind generation system. In: Conference Record of the 2006 IEEE Industry Applications Conference Forty-First IAS Annual Meeting, 08–12 October 2006. Tampa, FL, USA: IEEE, Vol. 2, pp. 1053–1058. doi: 10.1109/IAS.2006.256654.Open DOISearch in Google Scholar

eISSN:
2543-4292
Language:
English
Publication timeframe:
Volume Open
Journal Subjects:
Computer Sciences, Artificial Intelligence, Engineering, Electrical Engineering, Electronics