Investigational Validation of PV Based DCD-MLI Using Simplified SVM Algorithm Utilizing FPGA Tied with Independent Sources
- 1 Department of Electrical and Electronics Engineering, Gnanamani College of Technology, Namakkal, India
- 2 Department of Electronics and Communication Engineering, United Institute of Technology, Coimbatore, India
- 3 Department of Electrical and Electronics Engineering, Thiagarajar College of Engineering, Madurai, India
Abstract
This paper presents the independent source tied photovoltaic (PV) based three-phase three-level diode-clamped-multilevel inverter (DCD-MLI) utilizing field programmable gate array (FPGA) controller. The maximum power point (MPP) is tracked by using fuzzy logic algorithm. Employed for gating signal generation, the space vector modulation (SVM) strategy eradicate s the complexity in determining the reference vector location, the ON-time calculations and switching state selection. A digital proportional integral (PI) control algorithm is implemented on a FPGA to keep the current injected into the independent source (grid) sinusoidal and to achieve high dynamic performance with low total harmonic distortion (THD) of output voltage and output current which are 0.97% and 1.26%. With the proposed configuration, the adjustments of modulation index and phase angle are synthesized onto a FPGA by means of hardware description language (VHDL). The efficacy of the scheme is verified through simulation study. To confirm the feasibility of the scheme, experimental studies are carried out on a scaled-down laboratory prototype.
- Chel, A., Tiwari, G.N. and Chandra, A. (2009) Chandra, Simplified Method of Sizing and Life Cycle Cost Assessment of Buildings Integrated Photovoltaic System. Energy and Buildings, 41, 1172-1180. http://dx.doi.org/10.1016/j.enbuild.2009.06.004
- Blaabjerg, F., Chen, Z. and Kjaer, S. (2004) Power Electronics as Efficient Interface in Dispersed Power Generation Systems. IEEE Transactions on Power Electronics, 19, 1184-1194. http://dx.doi.org/10.1109/TPEL.2004.833453
- Rajkumar, M.V. and Manoharan, P.S. (2015) Modeling and Simulation of Three-Phase DCMLI Using SVPWM for Photovoltaic System. Springer Lecture Notes in Electrical Engineering, 326, 39-45. http://dx.doi.org/10.1007/978-81-322-2119-7_5
- Rajkumar, M.V. and Manoharan, P.S. (2013) Harmonic Reduction of Fuzzy PI Controller Based Three-Phase Seven-Level DCMLI with SVPWM for Grid Connected Photovoltaic System. Journal International Review on Modeling and Simulations, 6, 684-692.
- Subiyanto, S., Mohamed, A. and Hannan, M.A. (2012) Intelligent Maximum Power Point Tracking for PV System Using Hopfield Neutral Network Optimized Fuzzy Logic Controller. Energy and Buildings, 51, 29-38. http://dx.doi.org/10.1016/j.enbuild.2012.04.012
- Rajkumar, M.V. and Manoharan, P.S. (2013) FPGA Based Multilevel Cascaded Inverters with SVPWM Algorithm for Photovoltaic System. Elsevier Journal Solar Energy, 87, 229- 245. http://dx.doi.org/10.1016/j.solener.2012.11.003
- Jiang, L.L., Maskell, D.L. and Patra, J.C. (2013) A Novel Ant Colony Optimization-Based Maximum Power Point Tracking for Photovoltaic Systems under Partially Shaded Conditions. Energy and Buildings, 58, 227-236. http://dx.doi.org/10.1016/j.enbuild.2012.12.001
- Rodriguez, J., Lai, J.-S. and Peng, F.Z. (2002) Multilevel Inverters: A Survey of Topologies, Controls, and Applications. IEEE Transactions on Industrial Electronics, 49, 724-738. http://dx.doi.org/10.1109/TIE.2002.801052
- Colak, I., Kabalci, E. and Bayindir, R. (2011) Review of Multilevel Voltage Source Inverter Topologies and Control Schemes. Energy Conversion and Management, 52, 1114-1128. http://dx.doi.org/10.1016/j.enconman.2010.09.006
- Gupta, A.K., Khambadkone, A.M. and Tan, K.M. (2004) A Two-Level Inverter Based SVPWM Algorithm for a Multilevel Inverter. Proceeding of the IEEE on 30th Annual Conference Industrial Electronics Society, 2, 1823-1828. http://dx.doi.org/10.1109/iecon.2004.1431860
- Thirumurugan, P., Manoharan, P.S. and Rajkumar, M.V. (2012) VLSI Based Space Vector Pulse Width Modulation Switching Control. Proceedings of IEEE International Conference on Advanced Communication Control and Computing Technologies ICACCCT 2012, August 2012, 366-370. http://dx.doi.org/10.1109/icaccct.2012.6320798