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     Research Journal of Applied Sciences, Engineering and Technology


Photovoltaic System Based Trans Z Source inverter and Comparison of Various Carrier Disposition method for AC Load Applications

1R. Padmapriyadharishini, 1N.KiruthikaIndumathi and 2V.Ramakrishnan
1Department of EEE, St. Peter
Research Journal of Applied Sciences, Engineering and Technology  2016  8:857-869
http://dx.doi.org/10.19026/rjaset.12.2786  |  © The Author(s) 2016
Received: September ‎5, ‎2015  |  Accepted: September ‎28, ‎2015  |  Published: April 15, 2016

Abstract

In this study presents the Trans Z source inverter with respect to the effective Photovoltaic (PV) power generation based system for different kind of AC loads Conditions. The most demand of solar array can be used for improve the operating life and high efficiency of power generation system. The Trans Z source consists of two voltage fed and current fed inverter for power conversion purpose. It gives the higher voltage gains while keeping voltage stress low and also reducing the Z-source network to one transformer and one capacitor. The single diode dynamic model of PV based proposed system can be used to extract the maximum power generation. In this study proposed the control strategy of various carrier dispositions used for R and RL Load condition. The comparison study of PD, APOD and POD PWM techniques have been carried out by Total Harmonic Distortion (THD). The proposed inverter has been used to produce the three level based output voltages by using controller unit. The proposed topology also can be applicable to induction motor for verifying the soft start capability. The simulation results have been analyzed and verified by MATLAB/SIMULINK software tool.

Keywords:

AC load condition, Alternative Phase Opposition Disposition (APOD), induction motor, Photovoltaic Array (PV), PWM Pulse Generation, Phase Disposition (PD), Phase Opposition Disposition (POD), Total Harmonic Distortion (THD), Z source inverter,


References

  1. Ali, J., 2013. Implementation of improved Z-source inverter with reduced Z-source capacitor voltage stress and soft-start capability. Middle-East J. Sci. Res., 15(12): 1822-1829.
  2. Bajestan, M.M., M. Shahparasti and D.A. Khaburi, 2013. Application of trans Z-source inverter in photovoltaic systems. Proceeding of the 21st Iranian Conference on Electrical Engineering (ICEE, 2013), pp: 1-6.
  3. Divya, S. and V. Prabhu, 2014. High voltage Improved Trans-Z-Source inverter. Proceeding of IEEE 2nd International Conference on Electrical Energy Systems (ICEES, 2014), pp: 255-260.
    CrossRef    
  4. Jabavathi, J.D. and P.R. Venkateswaran, 2014. A new switching strategy for single stage boost inverter fed by solar PV system. Proceeding of the Power and Energy Systems Conference: Towards Sustainable Energy, pp: 1-7.
    CrossRef    
  5. Jung, J.H. and S. Ahmed, 2010. Model construction of single crystalline photovoltaic panels for real-time simulation. Proceeding of the IEEE Energy Conversion Congress and Exposition, pp: 342-349.
    CrossRef    
  6. Loh, P.C., D. Li and F. Blaabjerg, 2013. G-Z-source inverters. IEEE T. Power Electr., 28(11): 4880-4884.
    CrossRef    
  7. Mahendran, K., B. Indhumathy, S.U. Prabha and S. Suryakala, 2012. Adapted SVPWM for T-source inverter for renewable energy system. Proceeding of 2012 International Conference on Computing, Electronics and Electrical Technologies (ICCEET, 2012), pp: 404-408.
  8. Mehdipour, A., H. Khazraj, H. Majdinasab and A.V. Kumar, 2012. Voltage-fed trans Z source inverter in PV solar panel. Proceeding of the 5th International Conference on Computers and Devices for Communication (CODEC, 2012), pp: 1-4.
  9. Nguyen, M.K., Y.C. Lim and Y.G. Kim, 2013. TZ-source inverters. IEEE T. Ind. Electron., 60(12): 5686-5695.
    CrossRef    
  10. Qian, W., F.Z. Peng and H. Cha, 2011. Trans-Z-source inverters. IEEE T. Power Electr., 26(12): 3453-3463.
    CrossRef    
  11. Sreeprathab, N.R. and X.F. Joseph, 2014. A survey on Z-source inverter. Proceeding of the 2014 International Conference on Control, Instrumentation, Communication and Computational Technologies (ICCICCT, 2014), pp: 1406-1410.
  12. Tang, Y., S. Xie, C. Zhang and Z. Xu, 2009. Improved z-source inverter with reduced z-source capacitor voltage stress and soft-start capability. IEEE T. Power Electr., 24(2): 409-415.
    CrossRef    
  13. Thombre, N., P. Rana, R.S. Rawat and S. Umashankar, 2014. A novel topology of multilevel inverter with reduced number of switches and DC sources. Int. J. Power Electron. Drive Syst., (IJPEDS), 5(1): 56-62.
  14. Tran, Q.V. and K.S. Low, 2014. A new voltage type magnetically coupled T-source inverter. Proceeding of the 2014 International Power Electronics Conference (IPEC-Hiroshima 2014-ECCE-ASIA), pp: 446-451.
  15. Tran, Q.V., K.S. Low, A.V. Ho and T.W. Chun, 2014. A new current-type magnetically coupled T-source inverter. Proceeding of the 2014 IEEE International Conference on Industrial Technology (ICIT, 2014), pp: 318-323.
  16. Vadhiraj, S., K. Narayana Swamy and B.P. Divakar, 2013. Generic SPWM technique for multilevel inverter. Proceeding of the IEEE PES Asia-Pacific in Power and Energy Engineering Conference (APPEEC, 2013), pp: 1-5.
    CrossRef    
  17. Vidhyarubini, N. and G. Rohini, 2011. Z-source inverter based Photovoltaic power generation system. Proceeding of the International Conference on Emerging Trends in Electrical and Computer Technology (ICETECT, 2011), pp: 29-34.
  18. Walker, G., 2001. Evaluating MPPT converter topologies using a MATLAB PV model. J. Electr. Electron. Eng., Australia, IEAust. 21(1): 49-56.
  19. Zhenyu, N., 2012. The development of new-style photovoltaic Z-source inverter of ship. Proceeding of the IEEE Power Engineering and Automation Conference (PEAM, 2012), pp: 1-5.

Competing interests

The authors have no competing interests.

Open Access Policy

This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.

Copyright

The authors have no competing interests.

ISSN (Online):  2040-7467
ISSN (Print):   2040-7459
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