References
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.