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Performance Evaluation of Basic, Modified, and Advanced DC-DC Boost Converters Used with PV System

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Sustainable Technology and Advanced Computing in Electrical Engineering

Part of the book series: Lecture Notes in Electrical Engineering ((LNEE,volume 939))

Abstract

This paper presents the performance analysis and comparison of various DC-DC converters that are utilized to step up the output voltages in DC system. These converters are classified as basic, modified, and advanced boost DC-DC converter. Its capability to transform a low-level voltage to a high-level voltage or vice versa is an advantage in power electronics. To transform its voltage level value, various types of converters are used (basic converters) like boost, buck-boost, SEPIC (single end primary inductor converter), Zeta, and Cuk converter, but these converters lag in some performance parameters, so modified converters were preferred. The modified DC-DC converter used in this paper is interleaved, integrated boost-Cuk (IBC), modified SEPIC converter (MSC), single-switch converter (SSC), and two-switch buck-boost (TSBB) converter. Recently developed advanced boost converters are switched-capacitor boost converter (SCBC) and a stackable switching boost converter (SSBC) which are utilized nowadays in various applications. MATLAB/Simulink software is used in this paper, to simulate (compare) and analyze the output performances of different converters. In last, all the performance parameters were compared and concluded that in the basic converter SEPIC and Cuk converter, in modified converter interleaved and IBC converter, and in advanced DC-DC boost developed converter, switched-capacitor boost converter can be used in a PV system. The analysis of SEPIC, interleaved, and SCBC is also shown on PV system using fuzzy logic-based MPPT and concluded that SCBC has a better response as in output the ripple is very less in comparison to two other fuzzy logic-based converters.

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References

  1. Bimbhra PS (2003) Power electronics. Published by Khanna

    Google Scholar 

  2. Forouzesh M, Siwakoti YP, Gorji SA, Blaabjerg F, Lehman B (2017) Step-up DC-DC converters: a comprehensive review of voltage-boosting techniques, topologies, and applications. IEEE Trans Power Electron 32(12):9143–9178. https://doi.org/10.1109/TPEL.2017.2652318

  3. Rashid MH (2011) Power electronics handbook: devices circuits and application, 3rd edn. Elsevier, Burlington, MA, USA

    Google Scholar 

  4. Ayop R, Tan CW (2018) Design of boost converter based on maximum power point for photovoltaic applications. Sol Energy 322–335

    Google Scholar 

  5. Gorji SA, Sahebi HG, Ektesabi M, Rad AB (2019) Topologies and control schemes of bidirectional DC-DC power converters: an overview. IEEE Access 7:117997–118019

    Google Scholar 

  6. Soedibyo, Budi Amri B, Ashari M (2015) The comparative study of buck-boost, cuk, SEPIC and Zeta converters for maximum power point tracking photovoltaic using P & O method. In: 2nd International conference on information technology, computer and electrical engineering (ICITACEE), Indonesia

    Google Scholar 

  7. Siouane S, Jovanovic S, Poure P (2018) Service continuity of PV synchronous buck/buck-boost converter with energy storage. Energies 1369

    Google Scholar 

  8. Maroti PK, Padmanaban S, Holm-Nielsen JB (2019) A new structure of high voltage gain SEPIC converter for renewable energy applications. IEEE Access 7:89857–89868

    Google Scholar 

  9. Kumar K, Ramesh Babu N, Prabhu KR (2017) Analysis of integrated boost-cuk high voltage gain DC-DC converter with RBFN MPPT for solar PV application. In: International conference on innovations in power and advanced computing technologies [i-PACT], Vellore, India

    Google Scholar 

  10. Fu J, Zhang B, Qiu D, Xiao W (2014) A novel single-switch cascaded DC-DC converter of boost and buck boost converters. In: IEEE 16th European conference on power electronics and applications, Lappeenranta, Finland

    Google Scholar 

  11. Jung HY, Kim SH, Moon B, Lee S-H (2018) A new circuit design of 2-switch buck-boost converter. IEEE Access 6:47415–47423

    Google Scholar 

  12. Lin G, Zhang Z (2019) Low input ripple high step-up extendable hybrid DC-DC converter. IEEE Access 7:158744–158752

    Google Scholar 

  13. Azer P, Emadi A (2020) Generalized state space average model for multi-phase interleaved buck, boost, and buck-boost DC-DC converters: transient, steady-state and switching dynamics. IEEE Access 8:77735–77745

    Google Scholar 

  14. Tran VT, Nguyen MK, Choi YO, Cho GB (2018) Switched-capacitor-based high boost DC-DC converter. Energies

    Google Scholar 

  15. Sood VK, Abdelgawad H (2019) Power converter solutions and controls for green energy. Distributed energy resources in microgrids, Academic Press

    Google Scholar 

  16. Basha CH, Rani C, Odofin S (2018) Analysis and comparison of SEPIC, Landsman and Zeta converters for PV fed induction motor drive applications. In: Proceedings of the 2018 international conference on computation of power, energy, information and communication (ICCPEIC), Chennai, India

    Google Scholar 

  17. Basha CH, Rani C, Odofin S (2018) Analysis and comparison of SEPIC, Landsman and Zeta converters for PV fed induction motor drive applications. In: International conference on computation of power, energy, information and communication, pp 327–334

    Google Scholar 

  18. Hussaia CH, Basha N, Rani C (2020) Different conventional and soft computing MPPT techniques for solar PV systems with high step-up boost converters: a comprehensive analysis. Energies

    Google Scholar 

  19. Smyej M, Cheriti A (1999) Fuzzy logic controller for a DC-to-DC converter. In: Engineering solutions for the next millennium. 1999 IEEE Canadian conference on electrical and computer engineering, vol 2, pp 1020–1023

    Google Scholar 

  20. Leso M, Zilkova J, Girovsky P (2018) Development of a simple fuzzy logic controller for DC-DC converter. In: IEEE 18th international power electronics and motion control conference (PEMC)

    Google Scholar 

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Correspondence to Dilip Yadav .

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Yadav, D., Singh, N. (2022). Performance Evaluation of Basic, Modified, and Advanced DC-DC Boost Converters Used with PV System. In: Mahajan, V., Chowdhury, A., Padhy, N.P., Lezama, F. (eds) Sustainable Technology and Advanced Computing in Electrical Engineering . Lecture Notes in Electrical Engineering, vol 939. Springer, Singapore. https://doi.org/10.1007/978-981-19-4364-5_25

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  • DOI: https://doi.org/10.1007/978-981-19-4364-5_25

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-19-4363-8

  • Online ISBN: 978-981-19-4364-5

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