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A Novel Feedback Linearisation Control of Flyback Converter

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper presents a novel approach for feedback linearisation in a continuous conduction mode (CCM) of the flyback converter. Due to the unstable zero dynamics, a flyback converter has highly non-linear behaviour. Flyback converters mostly use the indirect (current) control mechanism. In contrast, this paper shows a direct control of the output voltage of a flyback converter with feedback linearisation (a non-linear control method). In the designed controller, an error integrator is applied to improve the dynamic and steadystate behaviour of the controller. To design the feedback linearisation method, the state-space averaged model is determined. The converter and the proposed control are tested in a MatLab/Simulink environment, and the results are compared with other optimal controller methods. The results provide feedback about the efficiency and practical implementation of the proposed method.
Słowa kluczowe
Wydawca
Rocznik
Strony
74--83
Opis fizyczny
Bibliogr. 20 poz., rys.
Twórcy
  • Széchenyi István University, Győr, Hungary
  • Széchenyi István University, Győr, Hungary
Bibliografia
  • H. A. Bouziane, R. B. Bouiadjra and M. B. Debbat, “Design of robust LQR control for DC-DC multilevel boost converter,” 2015 4th International Conference on Electrical Engineering (ICEE), Boumerdes, Algeria, 2015, pp. 1-5, doi: 10.1109/INTEE.2015.7416728. Cervone, A. and Brando, G. (2020). Input-State feedback linearization of a boost DC/DC converter, pp. 139–153.
  • Csizmadia, M. and Kuczmann, M. (2020). Design of LQR Controller for GaN Based Buck Converter. Pollack Periodica 15(2), pp. 37-48. doi: 10.1556/606.2020.15.2.4.
  • Csizmadia, M. and Kuczmann. M. (2022). Extended Feedback Linearization Control of Non-ideal DCDC Buck Converter in CCM. Power Electronics and Drives, 7(42).
  • Csizmadia, M., Kuczmann, M. and Orosz, T. (2022). A Novel Control Scheme Based on Exact Feedback Linearization Achieving Robust Constant Voltage for Boost Converter. Electronics, 12(1), p. 57. doi: 10.3390/electronics12010057.
  • Howimanporn, S. and Bunlaksananusorn, C. (2003). Performance comparison of continuous conduction mode (CCM) and discontinuous conduction mode (DCM) flyback converters. In: The Fifth International Conference on Power Electronics and Drive Systems, 2003. PEDS 2003, Vol. 2, pp. 1434-1438. doi: 10.1109/ PEDS.2003.1283194.
  • Iqbal, H. K. and Abbas, G. (2014). Design and analysis of SMC for second order DC-DC flyback converter. In: 17th IEEE International Multi Topic Conference 2014, pp. 533–538. doi: 10.1109/ INMIC.2014.7097398.
  • Keviczky, L., Bars, R., Hetthéssy, J. and Bányász, C. (2011). Control Engineering. Hungary: Széchenyi István University.
  • Khairy, S., Abozied, H., El-Zohri, E. H. and El Sayed, R. A. (2015). Self-Oscillating Flyback Converter for Mobile Batteries Charging Applications.
  • Mandal, S. and Mishra, D. (2018). Robust control of buck converter using H-infinity control algorithm. In: 2018 IEEE Applied Signal Processing Conference (ASPCON), pp. 163-167. doi: 10.1109/ ASPCON.2018.8748623.
  • Mohammed, A. A. and Nafie, S. M. (2015). Flyback converter design for low power application. In: 2015 International Conference on Computing, Control, Networking, Electronics and Embedded Systems Engineering (ICCNEEE), pp. 447-450. doi: 10.1109/ICCNEEE.2015.7381410.
  • Mohanty, P. R., Panda, A. K. and Das, D. (2015). An active PFC boost converter topology for power factor correction. In: 2015 Annual IEEE India Conference (INDICON), New Delhi, pp. 1-5. doi: 10.1109/INDICON.2015.7443118.
  • Pesce, C., Riedemann, J., Peña, R., Degano, M., Pereda, J., Villalobos, R., Maury, C., Young, H. and Andrade, I. (2021). A Modified Multi-Winding DC-DC Flyback Converter for Photovoltaic Applications. Applied Sciences, 11, p. 11999. doi: 10.3390/app112411999
  • Prasad, G. and Kumar, A. (2018). A comparison between sliding mode control and feedback linearization. In: 2018 5th IEEE Uttar Pradesh Section International Conference on Electrical, Electronics and Computer Engineering (UPCON), pp. 1-5. doi: 10.1109/UPCON.2018.8597038.
  • Paul, M. M. R. and Bhuvanesh, A. (2015). Design and Implementation of Battery Charger Using Flyback Converter for Constant Current and Voltage Control. International Journal for Research in Applied Science and Engineering Technology, 3, pp. 153-159.
  • Ramos-Paja, C. A., Bastidas-Rodriguez, J. D. and Saavedra-Montes, A. J. (2021). Design and Control of a Battery Charger/Discharger Based on the Flyback Topology. Applied Sciences, 11, p. 10506. doi: 10.3390/app112210506.
  • Sucu, M. (2011). Parametric average value modeling of flyback converters in CCM and DCM including parasitics and snubbers (T). University of British Columbia. Available at: https://open.library.ubc.ca/ collections/ubctheses/24/items/1.0072322. (last check 2023.01.13)
  • Szeli, Z., Horváth, E. and Szakállas, G. (2013). Versenyautó telemetriás rendszerének fejlesztése, különös tekintettel a rendszer villamosmérnöki és informatikai vonatkozásaira, A jövő járműve, 2013/01/02, pp. 42-45.
  • Tseng, S.-Y. and Fan, J.-H. (2021). Buck-Boost/ Flyback Hybrid Converter for Solar Power System Applications. Electronics, 10, p. 414. doi: 10.3390/electronics10040414.
  • Yin, Q., Gan, J., Chen, T., Shi, W., Liu, X. and Chang, Z. (2020). Research on the flyback switch power supply based on the primary feedback and the valley control. In: 2020 IEEE 9th Joint International Information Technology and Artificial Intelligence Conference (ITAIC), pp. 1312–1315. doi: 10.1109/ ITAIC49862.2020.9338942.
  • Zheng, H. and Shuai, D. (2012). Nonlinear control of Boost converter by state feedback exact linearization. In: 2012 24th Chinese Control and Decision Conference (CCDC), pp. 3502-3506.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-6ca02df0-f27f-4910-82e5-7aa14c621dd7
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